Document 3NExNnZ7z55jN0dnK8R5ZOQdx
7^7/ &
I
MIC Applied Sciences
(CO./OlV./DEPT./LOCATION)
REPORT NO.: 3979 JOB/PROJECT NO.: 43-000-760.21 -8502009
DATE: April, 1976
Final________________REPORT (TYPE OF REPORT)
RECEIVED
MAY 14 1976
Me
clmiral
..Mr*ANY .an
ST. LOUIS
TITLE: FINAL REPORT ON SPECTROSCOPY METHODS AND SPECIAL STUDIES - 1975
AUTHORS: M. W. Dietrich, et al
TITLE: FINAL REPORT ON SPECTROSCOPY METHODS AND SPECIAL STUDIES - 1975
AUTHORS: H. W. DU . i c h , e t a l
ABSTRACT:
This report describes special spectroscopy studies, new techniques investigated and methods developed by the Applied Sciences Spectroscopy Group at St. Louis during 1975- The individual report sections were issued on a continuing basis during the year. These investigations were undertaken utilizing spectroscopy techniques to solve technical problems encountered by business units of Monsanto Industrial Chemicals Company.
Fifty-five special spectroscopy studies were completed and three methods developed during 1975-
REPT.NO.: 3979
A- L
COPY NO.:
nrn
i Li t
COMPANY CONFIDENTIAL Thi* document is the property of Monsanto Company and the recipient is responsibly for its safekeeping and disposition. It contains CONFIDENTIAL INFORMATION which must not ba reproduced, revealed to unauthorized persons or sent outside the Company.without proper authorization.
RSV 0010524
DISTRIBUTION
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ABSTRACT ONLY
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3. Technical Reports Library (Loan Copy)
4. Manager, Applied Sciences - R. E. Keller
5. Group Leader, Applied Sciences - M. W. Dietrich 6. Patent Department * J. E. Maurer
7. Circulated Copies (one each to the groups below):
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Manager, Technology Planning Manager, Technology Evaluation Manager, Process Technology
b. Director/Managers, R6D Plasticizers Division Process Chemicals Division Rubber Chemicals Division Specialty Chemicals Division
c. Product Acceptability Managers
Each circulated copy to return to author.
Abbreviated Copies* To:
I. Manager, Applied Sciences Europe -
R. A. Lidgett * Louvain-La-Neuve 2. Manager, Physical Sciences Center *
W. E. Koerner * St. Louis j. Manager, Analytical Section, Process
Technology, MP&P - R. L. Haute - Texas City 4. Chief Chemists, et al - MIC - U.S.
F. Wright * Augusta G. L. Austin - Avon G. Doremus - Camden E. C. Moredock - Carondelet B. Mays - Columbia J. G. DePagter * Columbia J. B. Willmore - Delaware River
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^Abbreviated reports contain only the index, section titles, introduction and summary.
This report contains confidential information which is the property of the Monsanto Company and which shall be disclosed only Co duly authorized persons. The recipient is held accountable for the filing and safe custody of this report vhlch must be returned on demand.
COMPANY CONFIDENTIAL
Whan no longer needed, or upon request, return this report to Central Reports, R2C.
RSV 0010525
DISTRIBUTION
Abbreviated Copies* (Cont'd)
k. Chief Chemists, et al - MIC ~ U.S.
W. M. Mees - Everett
D. M. Wlddows - Kearny
H, J. Horner - Krummrich
L. A. Herman - Long Beach
0. E. Dolin - Nitro
R. A. Geisman - Queeny
B. S. K. Fung - Seattle
E. E. Thomsen - Soda Springs
P. Warner - Soda Springs
J. V. RobiMard - Trenton
A. R. Schroeder - Trenton
E. N. Danes, Jr. - Patchogue
5. Chief Chemists, et a) - MIC Europe and Brazil E. G. Bricked - Ruabon (Via 0. Danna)
P. Meganck - Antwerp
(Via 0. Danna)
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6. Chief Chemists - Other Monsanto Companies
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RSV 0010526
MONSANTO INDUSTRIAL CHEMICALS COMPANY ST. LOUIS TECHNOLOGY DEPARTMENT
St. Louis Research Report No. 3979
FINAL REPORT ON SPECTROSCOPY METHODS AND SPECIAL STUOIES - 1975
Job No. 43-000-760.21-8502009
Date: April, 1976
Work Done and Reported By:
M. W. Dietrich L. M. Chapman D. Guerry D. B. Hines B. Katlafsky 0. E. Klnast G. W. Nappes E. S. Tucker H. Yepez
-COMPANY C0NF1DENTIALR$V 0010527
TABLE OF CONTENTS
Page No.
I. INTRODUCTION.................................................. I
I I. GENERAL SUMMARY........................................ 1
III. NEW COMPOUNDS FOR SRC........................
I
IV. SPECTROSCOPY METHODS.............................
1
V. SPECTROSCOPY SPECIALSTUDIES. . .
2
RSV 00X0528
-1-
INTRODUCTION
This report describes special spectroscopy studies, new techniques investigated and methods developed by the Applied Sciences Spectroscopy Group at St. Louis during 1375* The individual report sections were Issued on a continuing basis during the year. These investigations were undertaken utilizing spectroscopy techniques to solve technical problems encountered by business units of Monsanto Industrial Chemicals Company.
GENERAL SUMMARY
Fifty-five special spectroscopy studies were completed and three methods developed during 1375. The studies provided data for MIC projects from the Oetergent and Fine Chemicals, Food and Fine Chemicals, Plasticizer, Process Chemicals, Flavor/Essence and Specialty Products business units. Pollution control projects for the Krumnrich, Nltro, Queeny and Seattle Plants and special studies involving worker safety for the Corporate Medical Department at twelve Monsanto plants or research facilities were also undertaken.
NEW COMPOUNDS FOR SRC
No new compounds were prepared in the course of these investigations.
SPECTROSCOPY METHODS
This work is further summarized under each of the appended specific reports (Methods 75-1 to 75"**).
A. Component Index (1975) Method No,
Component
75-1
Potassium, AA Determination in Aircraft Hydraul1c Fluids
75-2
Potassium, AA Determination in Aircraft Hydraulic Fluids (Revised)
75-3 75-**
Not issued Lead, AA Determination in U.S.P. Vanillin
-COMPANY CONFIDENTIAL-
i RSV 0010529
IV. SPECTROSCOPY METHODS (Cont'd) B. Product Index (1975) Method No.
i
Product
75-1 75-2
Aircraft Hydraulic Fluids, Potassium Content
Aircraft Hydraulic Fluids, Potassium Content (Revised)
75-3
Not issued
75-*
Vanillin (U.S.P.). Lead Content
V. SPECTROSCOPY SPECIAL STUDIES
This work is further sunmarl2ed In each of the appended specific reports (Special Studies 75*1 to 75*57).
Report No.
Title
75-1
Determination of Volatiles in Decatur, Alabama Plant Air (It)
75-2
Identification of Different Cresylic Phosphate Esters in Stauffer Fluids
75-3
Air Monitoring for Phenol at Port Plastics Plant, Addyston, Ohio
75-4
Analyses for Organics in the Air at Pensacola
75-5
Identification of Minor Components in Ethyl Benzene and Tetrachlorophthalic Anhydride
75-6
J.F. Queeny Plant Standard Oil and Grease Residues
75-7
Radioactivity In Diphenyl Oxide Intermediates, Finished Goods and Environmental Effluent
75-8 75-9 75-10
Tracer Lithium Analyses - Nitro Plant Effluent
Maleic Anhydride Refining Process Impurity
Analysis of Benzene in Air at Anniston, Alabama Plant
75-11
Analysis of Volatiles in Decatur, Alabama Plant Air (III)
-COMPANY CONFIDENTIAL-
RSV 0010530
V. SPECTROSCOPY SPECIAL STUDIES (Cont'd)
Report Mo,
TTtle
75-12
Organic Chemicals in Chocolate Bayou Plant Waters
75-13
Determination of Benzyl Chloride in Oelaware River Plant Air
75-14
Determination of Toluene D2isocyanate in Air in the Super Dome (ll)
75-15
Modification of a Gas Chromatograph for External Use of the Carrier Gas
75-16
NC-220 Quality
75-17
Chlorodibenzo-p-Dtoxins in Pentachlorophenol Treated with Morpholine
75-18
June 1975 Mercury Inventory, W. G. Krummrich Plant, Chloro-Alkali Department
75-19
Determination of Maleic Anhydride and Vinyl Acetate in Air: Port Plastics
75-20
Determination of Chioroprene in Air at Port Plastics Plant, Addyston, Ohio
75-21
Determination of Volatiles in Decatur, Alabama Plant Air (IV)
75-22
Determination of Contaminants in Dimethyl Sulfide
75-23
Volatile Organics Evolved during Thermogravimetric Analysis of Flame and Smoke Retarding PVC Formulations
75-24
Volatiles from ABS and Styrene Polymers at Processing Temperatures
75-25
Determination of 81s(2-chloroethy1) Ether in Phosgards
75-26
Hydrolytic Stability of Pydrauls and Competitive Products
75-27
Determination of Vinyl Chloride, Trichloroethylene and Epichlorohydrin in Air at Baxley, Georgia Plant
-COMPANY CONFIDENTIAL-
RSV 0010531
-*-
V. SPECTROSCOPY SPECIAL STUDIES (Cont'd)
Report No.
Title
75-28 75-29
75-30
Personnel Honitorlng of PCP Unit at Nitro Plant
BIschloromethyl Ether Content of Oequest Products and Everett Plant Air
Trace Lithium Analyses - Nitro Plant Effluent (II)
75-31 75-32
Analyses of Nitro Plant Waste Waters for Trace Organic Pollutants
Determination of Volatiles in Decatur, Alabama Plant Air (V)
75-33 75-3*
Tracer Lithium Analyses - Nitro Plant Effluent (III)
Determination of Trichloroethylene (TCE) in Air at Delaware River
75-35 75-36
75-37 75-38
Determination of Benzene in Air at Anniston, Alabama Plant (II)
Pydraul 29 ELT/Pydraul 50 E Gel Complaint from Republic Steel
Chemical Ionization of Esters and Alcohols
Determination of Trichloroethylene (TCE) in Air at St. Peters
75-39 75-*0
Determination of Contaminant in Oxo Alcohol
Synthetic Fatty Acid Continuous Pilot Plant Radiotracer Catalyst Study with Iridium-192 -- Feaslbi11ty Investigations
75--41
Synthesis, Analytical Characterization and Preparation of FDA Test Coatings of Modaflow l"C
75-*2
Determination of Aroclor 1016 in Air at Electric Utilities Company, LaSalle, Illinois
75-*3
Determination of Levels of Trlethylamine and Butanol in Air at the Delaware River Plant
75-** 75-*5
Not Issued
Determination of Maleic Anhydride and Styrene in Air at Everett, Massachusetts
-COMPANY CONFIDENTIAL-
RSV 0010532
-5-
V. SPECTROSCOPY SPECIAL STUDIES (Cont'd)
Report No.
Title
75-46
Not Issued
75-47
Synthesis. Characterization and Purification of S-334FMUC
75-48 75-49 75-50 75-51 75-52 75-53 75-54 75-55
Synthesis of Five Radiolabeled (P-32) Food Phosphate Salts
Determination of Benzene in Air in the St. Louis Research Center
Preparation and Conditioning of Collection Columns for Organic Chemicals in Air
GC Modification for Measurement of Organic Chemicals in Air by Thermal Desorption
December 1975 Mercury Inventory, V. G. Krummrich Plant, Chior-Alkali Department
Determination of Benzyl Chloride and Toluene in Air at the Delaware River Plant
Determination of Acetamide (AC), N-Methyl Acetamide (NMAC) and Dimethyl Acetamide (DMAC) in Urine
Chlorinated Oibenzofurans in Crude Honochlorobenzene from the Oxychlorination Process
75-56
The Preparation and Characterization of Carbon-14 Labeled Tetradecanol Ethoxylates
75-57
Organic Contaminants In Trenton Phosphate Products
COMPANY CONFIDENTIAL LY 0010533
S-75-H-1 DIRECT DETERMINATION OF POTASSIUM IN AIRCRAFT _____ HYORAULIC FLUIDS BY ATOMIC ABSORPTION
SCOPE This method Is Intended for the direct determination of potassium In air craft hydraulic fluids at e level of about 18-20 ppm with an estimated precision of 6.71 of the amount present for single analyses. PRINCIPLE A weighed sample of fluid for analysis Is dissolved In a 1:1 (v/v) mixture of glacial acetic acid and methyl Isobutyl ketone and diluted to volume with this mixed solvent. The potassium is determined by the method of standard additions In the presence of a high concentration of'lithium to suppress potassium ionization In the flame. REAGENTS 1. Standard reference solution of 1000 ug/ml potassium (Note 1). 2. Methyl Isobutyl ketone (Note 2). 3. Glacial acetic acid (Note 3). 4. Solution of 1000 ug/ml lithium in 1:1 (v/v) glacial acetic acid/
methyl isobutyl ketone solvent (Note 4). APPARATUS 1. Volumetric ptpets as appropriate. 2. Volumetric flasks as appropriate. 3. Perkln-Elmer Model 403 Atomic Absorption Spectrophotometer equipped
with a hollow cathode potassium source and an air/acetylene burner with a 4-inch single slot.4 4. Specific Instrumental conditions for the Perkln-Elmer Model 403 Atomic Absorption Spectrophotometer: a. Hollow cathode lamp: Potassium (Note 5) b. Wavelength: 7665A. c. Slit: 4 (7A.). d. Readout: Digital, concentration mode. e. Burner: Titanium, 4-Inch single slot (Note 6). f. Flame: A1r/acetylene; lean, blue oxidizing.
RSV 0010534
Page Two
PROCEDURE
1. Weigh accurately about 5 9 of sample Into a 50 ml volumetric flask (Mote 7).
2. Add about 25 ml of mixed solvent, dissolve the fluid sample with agitation and dilute to volume.
3. Prepare a 2 ppm potassium standard in mixed solvent.
A. Set up the atomic absorption instrument as follows:
a. "Concentration" and "Repeat" mode.
b. "Onset" at 0.
c. "Magnitude" at 0.
d. 10 Average mode.
5* Aspirate mixed solvent Into the flame and set the base line to zero with the "Auto Zero" button.
6. Prepare four standard addition (Note 8) solutions from the sample solution as follows:
a. Aliquot 1 ml of the sample solution into four 10-ml volumetric flasks.
b. Add 0 ml of 2 ppm potassium standard to the first flask, 1 ml of standard to the second flask, 2 ml of standard to the third flask and 3 ml of standard to the fourth flask.
c. Add 5 ml of 1000 ppm lithium solution to each 10--ml flask.
d. Dilute each flask to volume with mixed solvent and mix thoroughly.
e. The standard addition concentrations are thus 0, 0.2, 0.4 and 0.6 ppm potassium.
7. Briefly aspirate the standard addition solution containing the largest amount of added potassium (0.6 ppm) and set the readout to about 0.250 (Note 3).
8. Depress the "Hanual" and "100 Average" buttons.
9. Check the base line and add or subtract a small correction to each solution reading as required.
10. Measure the observed absorbance of each of the four standard addition solutions.
11. Plot the observed absorbance vs. concentration of added potassium In each solution and determine the concentration of potassium In the usual way from the Intersection of the straight line with the concentration axis (Note 10).
RSV 0010535
S-75-M-1 Pag* Three
CALCULATIONS
where
ppm K
1 X 500 W
t ppm K determined from the standard addition plot. Step 11.
W Sample weight (g)
NOTES
Cjj ppm K correction due to potassium presence In the lithium solution added to suppress potassium ionization (Note 11).
1. Catalog No. S0-P-351, Fisher Scientific Co., Fair Lawn, N.J. 07410
2. AR grade, Catalog No. 6247* Hallinckrodt, Inc., St. Louis, Ho. 63147
3. AR grade. Catalog No. 2504, Hal IInckrodt, Inc., St. Louts, Ho. 6314?
4. This solution may be prepared from "potassium-free" Li2C0$. Spectro scopic grade L12CO3 from Spex Industries, inc., 3880 Park Ave., Metuchen, N.J., Cat. No. 1234, purity 5-9s (K content 2-3 ppm) is satisfactory. Weigh 5*3249 g of Li2C0) Into a 400-ml beaker. Add slowly with gentle agitation enough glacial acetic acid to neutralize the carbonate with a small excess of acetic acid. Using 1:1 mixture of glacial acetic acid/methyl Isobutyl ketone, quantitatively transfer the solution to a 100-ml volumetric flask and dilute to volume with the mixed solvent and thoroughly mix. Aliquot 10 ml of this solution to a 100-ml volu metric flask and dilute to volume with mixed solvent to obtain the 1000 ug/ml lithium solution for use in the analysis.
5. Catalog No. JA45-36052, Fisher Scientific Co., Fair Lawn, N.J. 07410. Adjust the lamp current to 5-6 HA to avoid severe self-absorption. The current of 12 HA stated on the lamp is much too high.
6. Part No. 303-0418, Perkin-EImer Corp., Norwalk, Conn.
7. This may be easily done with a 5-ml plpet or syringe which delivers about 4.9 g of fluid.
8. Analytical Hethods for Atomic Absorption Spectrophotometry, The PerklnElmer Corp., Norwalk, Conn, (revised 1968).9
9. The results may be conveniently plotted on graph paper having 10 X 10 divisions to the 1/2 Inch, 7 1/2 X 10 Inches (Keuffel and Esser No. 46-1470) with spectrometer readout values on the ordinate with 5 divi sions 0.010. Do not turn the Concentration" dial more than about halfway (500-600)' use a lower readout if necessary.
RSV 00L0536
Page Four
10. To avoid bias, tha Intercept of the straight line on the concentration axis Is bast calculated by regression analysis (least squares fit). A Texas Instruments, Model SR-51, Calculator Is used for this purpose In this laboratory.
11. The LIsCOa used In the development of this method of analysis was found to contain 2.6 ppm potassium by our analysis. The correction
to be subtracted (<) from each analytical result may be calculated
as ~fol lows:
1
(ppm K In LiaCOa) cl i (Fluid Sample" Wt., W) X 1.33 ppm
For 2.6 ppm K In LlaCOa and a fluid sample weight of 5 9 the correction to be subtracted would be:
(2.6)(1.33) CL| (5) 0.7 ppm
APPENDIX
A. Precision and Accuracy of Method
A standard was prepared in the laboratory containing 18.5 ppm potassium. Five analyses of this standard by the above procedure were done with the following results:
Trial
PPM K Found
Statistical Data:
1 2
3 4
5
18.3
18.0
18.9
18.3
19.1
a. Standard Deviation * 0.46
b. Average 18.52 ppm K
c. Standard Deviation of Average 0.206
d. Confidence Limits for single analysis + 1.28 ppm K
e. Confidence Limits for five analyses +, 0.57 ppm K
f. Precision of single analysis + 6.72 of amount present
g. Precision of five analyses - + 3.0t of amount present
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
8/75 * 0. Guerry, M. W. Dietrich
RSV 0010537
Spectroscopy
S-75-H-2 (R)
REVISED METHOD FOR THE DIRECT DETERMIHATION OF POTASSIUM IN AIRCRAFT
HYDRAULIC FLUIDS BY ATOMIC ABSORPTION
SCOPE
This method Is intended for the direct determination of potassium in air* craft hydraulic fluids at a level of about 18*20 ppm with an estimated precision of 9.5$ of the amount present for single analyses, it should be used in place of S-75-M-1.
PRINCIPLE
A weighed sample of fluid for analysis Is dissolved in a 1:1 (v/v) mixture of glacial acetic acid and methyl isobutyl ketone and diluted to volume with this mixed solvent. The potassium is determined by the method of standard additions in the presence of a high concentration of lithium to suppress potassium ionization in the flame.
REAGENTS1 2 3
1. Standard reference solution of 1000 ug/ml potassium (Note 1).
2. Methyl isobutyl ketone (Note 2).
3. Glacial acetic acid (Note 3)
A. Solution of 2000 ug/ml lithium In 1:1 (v/v) glacial acetic acid/ methyl isobutyl ketone solvent (Note A).
APPARATUS
1. Volumetric pipets as appropriate.
2. Volumetric flasks as appropriate.
3. Perkin*Elmer Model A03 Atomic Absorption Spectrophotometer equipped with a hollow cathode potassium source and an air/acetylene burner with a 2-inch single slot or a nitrous oxide burner.
A. Specific Instrumental conditions for the Perkin-Elmer Model A03 Atomic Absorption Spectrophotometer:
a. Hollow cathode lamp: Potassium (Note 5)
b. Wavelength: 7&&5A.
c. Slit: A (7A.).
d. Readout: Digital, concentration mode.
e. Burner: 2-inch single slot (Note 6), rotated 90 to direction of the lamp beam. The burner Is rotated perpendicular to the lamp beam to reduce the effects of potassium contamination from the added lithium and from the solvent system.
f. Flame: Air/acetylene; lean, blue oxidizing.
RSV 0010538
$-75-M-2(R) Page Two
PROCEDURE
1. Weigh accurately about 5 g of sample into a 25 ml volumetric flask (Note 7).
2. Add. about 15 ml of mixed solvent, dissolve the fluid sample with agitation and dilute to volume. Mix thoroughly.
3* Prepare a 10 ppm potassium standard in mixed solvent.
k. Set up the atomic absoprtlon instrument as follows:
a. "Concentration" and "Repeat" mode.
b. "Onset" at 0.
c. "Magnitude" at 0.
d. 10 Average mode.
5. Aspirate mixed solvent into the flame and set the base line to zero with the "Auto Zero" button.
6. Prepare four standard addition (Note 8) solutions from the sample solution as follows:
a. Aliquot 2 ml of the sample solution into four 10-mi volumetric flasks.
b. Add 0 ml of 10 ppm potassium standard to the first flask, 1 ml of standard to the second flask, 2 ml of standard to the third flask and 3 ml of standard to the fourth flask.
c. Add 5 ml of 2000 ppm lithium solution to each 10-mi flask.
d. Dilute each flask to volume as required with mixed solvent and mix thoroughly.
e. The standard addition concentrations are thus 0, I, 2 and 3 ppm potassium.
7. Briefly aspirate the standard addition solution containing the largest amount of added potassium (3 ppm) and set the readout to about 0.250 (Note 9).
8. Depress the "Manual" and "100 Average" buttons.
9. Check the base line and add or subtract a small correction to each solution reading as required.
10. Measure the observed absorbance of each of the four standard addition
solutions.
11. Plot the observed absorbance vs. concentration of added potassium in each solution and determine the concentration of potassium in the usual way from the intersection of the straight line with the concentration axis (Note 10).
RS V 0010539
CALCULATIONS
S-75-M-2(R) Page Three
whgre:
ppm K
I X 125 W
NOTES
I " ppm K determined from the standard addition plot* Stp M.
W Sample weight (g).
1. Catalog No. S0-P-351, Fisher Scientific Co., Fair Lawn, N.J. 07410.
2. AR grade. Catalog No. 6247, Hallinckrodt, Inc., St. Louis, Mo. 63147.
3. AR grade. Catalog No. 2504, Hallinckrodt, Inc., St. Louis, Mo. 63147.
4. This solution may be prepared from "potassium-free11 LI2CO3. Spectro scopic grade L^COs from Spex Industries, Inc., 3880 Park Ave., Metuchen, N.J., Cat. No. 1234, purity 5*9* (K content * 2-3 ppm) is satisfactory. Weigh 5.3249 g of L^CO} into a 400-ml beaker. Add slowly,with gentleagitation, enough glacial acetic acid to neutralize the carbonate with a small excess of acetic acid. Using glacial acetic acid, quantitatively transfer the solution to a 100-ml volimetrlc flask, dilute to volume with glacial acetic acid and thoroughly mix. Aliquot 20 ml of this solution to a 100-ml volumetric flask and dilute to volume with mixed solvent to obtain the 2000 ug/ml lithium solution for use in the analysis.
5. Catalog No. JA45-36052, Fisher Scientific Co., Fair Lawn, N.J. 07410. Adjust the lamp current to 5*6 MA to avoid severe self-absorption. The current of 12 MA stated on the lamp is much too high.
6. Part No. 303*0420 (2-inch single slot) or 303*0419 (nitrous oxide burner), Perkin-Elmer Corp., Norwalk, Conn.
7. This may be easily done with a 5*ml pi pet or syringe which delivers about 4.9 g of fluid.
8. Analytical Methods for Atomic Absorption Spectrophotometry, The PerkinElmer Corp., Norwalk, Conn, (revised 1966).
9. The results may be conveniently plotted on graph paper having 10 X 10 divisions to the 1/2 inch, 7 1/2 X 10 inches (Keuffei and Esser No. 46-1470) with spectrometer readout values on the ordinate with 5 divi sions 0.010. Do not turn the "Concentration" dial more than about halfway (500-600); use a lower readout If necessary.
10. To avoid bias, the intercept of the straight line on the concentration axis ts best calculated by regression analysis (least squares fit). A Texas Instruments, Model SR--SI Calculator is used for this purpose (n this laboratory.
RSV 0010540
S-75-*-2(R) Page Four
APPENDIX
Precision and Accuracy of Method
A standard was prepared In the laboratory calculated to contain 21.5 ppm potassium. Five analyses of this standard by the above procedure were done with the following results:
Trial
PPM K Found
1 22.3 2 22.2
3 22.5
It 23.0
5 24.1
Statistical Data:
1. Standard Deviation * 0.78
2. Average * 22.82 ppm K
3. Standard Deviation of Average * 0-348
4. 95% Confidence Limits for single analysis + 2.16 ppm K
5. 95% Confidence Limits for five analyses - +0.97 ppm K
6. Precision of single analysis + 9-5% of amount present
7. Precision of five analyses + 4.3% of anount present
ss
Monsanto Industrial Chemicals Co. Applled Sciences St. Louis, Ho.
11/75 - D. Guerry, M. W. Dietrich
R$ V 0010541
Spectroscopy Method S-75-M-4
DETERMINATION OF TRACE LEAD IN U.S.P. VANILLIN BY FLAMELESS ATOMIC ABSORPTION
SCOPE
This method Is intended for the determination of lead in U.S.P. vanillin at a level of about 0.1 ppm with an estimated precision of 22$ (95$ confidence limits) of the amount present for single analyses.
PRINCIPLE
A weighed sample for analysis is digested with concentrated nitric acid and 30$ hydrogen peroxide, and made up to volume with water. The lead is determined by the method of standard additions using a flameless atomic absorption technique with a graphite furnace atomizer.
REAGENTS
1. Standard reference solution of 1000 yg/yl lead (Note 1).
2. Concentrated nitric acid (Note 2).
3. Hydrogen peroxide, 30$ (Note 3)-
APPARATUS
1. Hot plate. 2. Volumetric pipets as appropriate. 3. Volumetric flasks as appropriate. 4. Beakers as appropriate. 5. Eppendorf pipette, 25 microliter volume (Note k). 6. Perkin Elmer Model 303 Atomic Absorption Spectrophotometer equipped
with a hollow cathode lead source, a deuterium background corrector and a graphite furnace atomizer for flameless atomic absorption analysis. 7. Specific instrumental conditions for the Perkin Elmer Model 303 Atomic Absorption Spectrophotometer:
a. Hollow cathode lamp: Lead (Note 5) b. Wavelength: 2833 A. c. Slit: k (7A). d. Readout: Recorder (Note 6): Chart speed 0.75 In/min, noise suppression 1,
scale expansion XI. e. Graphite furnace atomizer: Graphite tube type (Note 7): Drying, 150C
for 30see.; Ashing, 700C for 30 sec.; Atomization, 2500C for 8 sec. Nitrogen gas purge rate at 30.
PROCEDURE
1. Weigh accurately about 2 g of sample Into a 400-ml beaker.
2. Add slowly and continuously 25 ml of concentrated HN0. and allow to stand until the Initial reaction has moderated.
RSV 0010542
S-75-M-4 Page Two
PROCEDURE (Cont'd)
3. Place on a hot plate, set at "Medium" and boil off HNO- down to about
5 ml.
3
4. Add 5 ml of 302 hydrogen peroxide.
5. Boll off excess liquids down to about 2-3 ml, remove from the hot plate and cool.
6. Quantitatively transfer to a 10-ml volumetric flask and dilute to volume with water.
7. Prepare a 0.4 ug/ml lead standard.
6. Prepare three standard addition (Note 8) solutions from the sample solution as follows.
a. Aliquot 3 ml of the sample solution into three 10-ml volumetric flasks.
b. Add 0 ml of 0.4 ug/ml lead standard into the first flask, I ml of standard into the second flask and 2 ml of standard into the third flask.
c. Dilute each flask to volume and mix thoroughly. d. The standard addition concentrations are thus 0, 0.04 and 0.08 ug/ml
of lead, and 25 microliters (0.025 milliliter) of each of these solutions give 0, I and 2 nanograms of lead respectively.
9. Turn on the recorder and press the "High Temperature" button for 2-3 seconds to clean the graphite furnace before introducing samples for analysis. Note any response (peaks) on the recorder, and continue the cleaning intervals until any peak disappears.
10. Using an Eppendorf pipette, introduce a 25 micro!!ter aliquot of each sample solution in turn into the graphite furnace and atomize each according to the temperature program previously set.
11. Run each solution at least twice and average the peak absorbance values.
12. Plot the observed absorbance vs. concentration of added lead In each solution (absorbance vs. nanograms tead/25 microliters solution) and determine the concentration of lead in the usual way from the Intersection of the straight line with the concentration axis (Note 9).
CALCULATIONSI ppm Pb
I X 1.333 W
where
Intersection of the standard addition plot with the concentration axis. Step 12 (nanograms Pb/25 microliters)
W Sample weight (g)
RSV 00X0543
PRECISION AMD ACCURACY OF METHOD2 3 4
S-75-M-4 Page Three
Five standards were prepared in the laboratory by adding 0.5 ppm lead to 2-g samples of U.S.P. vanillin. These five lead*splked standards along with five 2-g blanks of U.S.P. vanillin treated to remove lead (Note 10) were analyzed according to the above procedure. The following results were 1 obtained: 1
t
i I
Trial
Blank (ppm Pb)
0.095
Spiked (ppm Pb)
0.622
1 l
2 0.012 0.712
t
3
0.063
0.646
i
i 4 0.115 0.751!
i 5 0.198 0.655
1 Average:
0.1006
0.6778
Stand, deviation:
0.0669
0.0539
Stand, deviation average: 0.0299
0.0241
1 Difference: Spiked-Blank
t
(a) Average, difference
- 0.5772
(b) Stand, deviation, difference
- 0.0859
i (c) Stand, deviation, average difference 0.0859//To' - 0.0272
For 5 duplicate analyses, average difference: 0.577 ppm Pb relative found.
10.9%
For a single analysis of a spiked standard: 0.678 ppm Pb + 22% relative found.
i NOTES
I 1. Catalog No. SO-L-21, Fisher Scientific Co., Fair Lawn, N.J. 07410
2. BSA Electronics Grade, Code 108-2677, Allied Chemical Co., Specialty Chemicals Division, P.0. Box 1087 R, Norristown, N.J. 07960.
3. Catalog No. 5240, Hal 1 tnckrodt, Inc., St. Louis, Ho. 63147.
4. Catalog No. 21-3700, Flshef Scientific Co., Fair Lawn, N.J. 07410.
5- Catalog No. JA45-36039, Fisher Scientific Co., Fair Lawn, N.J. 07410.
RSV 0010544
S-75-M-4 Page Four
NOTES (Cont'd)
6. $ervo-rfter It, Texas Instruments, Inc., Dallas, Texas 7S222.
7. Model HGA-2100 Graphite Furnace, The Perkin Elmer Corp, Norwalk, Conn.
8. Analytical Methods for Atomic Absorption Spectrophotometry, The Perkin Elmer Corp., Norwalk, Conn, (revised 1968).
9.
1 t 10.
To avoid bias, the intercept of the straight line on the concentration axis is best calculated by regression analysis (least squares fit).
A Texas Instruments, Model SR-51, calculator is used for this purpose in this laboratory.
U.S.P. vanillin was dissolved in 1:1 (v/v) isopropyl alcohol/water solvent and 152 of its weight of Imac TMR thiol resin (Akzo Chemie, Netherlands) was added. The mixture was stirred overnight, the resin filtered off and the vanillin was recrystal 1ized from the solution. Thiol ion-exchange resins are reported to be efficient in removing heavy metals such as lead. No effort was made to determine whether the apparent 0.1 ppm Pb in the treated vanillin was actually Pb or a background effect. Analyses of 10 random lots of U.S.P. vanillin (untreated) showed an average level of 0.12 ppm and a range of 0.05 to 0.24 ppm Pb.
I
)
ss Monsanto Industrial Chemicals po. Applied Sciences St. Louis, Mo. 12/75 - 0. Guerry, M. W. Dietrich
RSV 0010545
Special Study S-75-SS-I
ANALYSIS OF VOLATILES IN DECATUR, ALABAMA PLANT AIR (II)
INTRODUCTION
This is an investigation to determine concentration levels of vinyl bromide (VBrJ, vinyl acetate (VA), and acrylonitrile (AN) in air at the North polymer area of the Decatur, Alabama plant. The data obtained will be used to determine exposure levels to the worker in this area.
SUMMARY
Results of the study are found in the attached table. GC reten tion times for VA and AN were so similar under these conditions that they could not be used to distinguish between them. Only
one sample contained either, and this was at a level too low for identification with our existing mass spectrometer. VBr was
observed and identified by GC/MS at levels from <0.03 ppm to 8.13 ppm. Only one sample contained an unknown, at a concentra
tion of <v0.06 ppm as shown in the table. None of the samples
contained detectable levels of vinyl chloride or vinylldene chloride.
EXPERIMENTAL
Refer to Spectroscopy Special Study 74-32 for procedure.
A sample calculation Is listed below. Values were based on a vinyl bromide standard.
Calculation
Volume sampled * flow rate (ml/min.) x minutes x 10"3
ex: L3
Volume sampled * 44 ml/min. x 60 min. x 10~3 - 2.64 L
Weight Sample
sample area (counts) x xstd. cone*std. area (counts)
ex: L3, VBr
122340 x 2.6 1 - 96 Mg wt. sample
Concentration sample Mg/l* * wt. sample/volume sampled
cone. jig/L - 96 ug/2.64 L - 36*3 ug/L
Concentration (ppm) Mg/L x .024/MW x 1000
- 36.3 x .024/107 x 1000 - 8.1 ppm
VBr std. 2.6 /ig/)uL x 1 fdL
RSV 0010546
Reference: 6C/MS File #75-4.
de
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Missouri 1/75 - L- M. Chapman, M. W. Dietrich
S-75-SS-1 Pege 2
RSV 0010547
S-75-SS-I Pge 3
Sample L-3 L-4 L-7 L-ll L-12 L-5
Concentration (ppm)
VBr 8.1 0-7
*AN
X
<0.07
**0.07
aVA
X
<0.05
*<0.05
<0.03
**0.07
*<0.05
<0.03 <0.03
0.1 *<0.07
0.07 *<0.05
blank
Unknown ' -06 ppm
x None detected
x L-5 and L-4 used the mllllpore M-2 pump for sampling with a :flow rate of 44 ml/mln.
L-7, L-ll and L-12 used the air check SKC 222-451 pump for sampling with a flow rate of 17 ral/min.
Note AN and VA have the same retention time and values are based on Individual molecular weight* Since the concentration Is so low, mass spectrometrlc confirmation was not attainable*
RSV 0010543
Special Study S-75-SS*2
IDENTIFICATION OF DIFFERENT CRESYLIC PHOSPHATE ESTERS IN STAUFFER FLUIDS
SUMMARY
Three samples of fluids from Stauffer Chemical Company showed significant differences In the type of phosphate ester used. The esters were found to range from a cresyl diphenyl phosphate type to a very highly substituted phosphate ester.
DISCUSSION
NMR shows that the phosphate esters in three Stauffer fluids, 149 EIT, FQ ISO, and FQ SCF, are cresyl type esters. That is, any substitution on the basic triphenyl phosphate molecule is mainly methyl substitution on the aromatic portion of the molecule. Some ethyl substitution Is also present in these fluids and this is probably the result of ethyl phenols being present in cresols.
The GC traces of these fluids, however, are quite different as shown in the figure. The ester in 149 ELT is basically a cresyl diphenyl phosphate with a significant amount of triphenyl phosphate and dicresy! phenyl phosphate. ' The phenol analysis on the bomb hydrollzed esters is shown in the table. The high percentage of phenol for 149 ELT is consistent with the large amount of triphenyl phosphate and cresyl diphenyl phosphate in this ester.
The ester in FQ 1$0 is a dicresy! phenyl type with a small amount of triphenyl phosphate. The ester in SCF is even higher boiling and is on the average tricresyl phosphate or xylyl dIcresyl phosphate. The low level of phenol in the table and the large amount of xylenols agree with the high boiling characteristics of the ester.
GC/MS analyses of the phenols from bomb hydrolysis is in basic agreement with the identifications done at J. F. Queeny Plant by retention time. Some changes In the Identifications were made because of the GC/MS data and these a clearly Indicated.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
1/75 ~ G. W. Nappes, M. W. Oietrich
RSV 0010549
RSV 0010550
TABLE PHENOL ANALYSIS OF BOMB HYDROLIZED FLUIDS
J. F. QUEENY PLANT
19-EEC-74 TIME* 16t13 COMPETITIVE FKCrFHATE ESTER KYCF.0LZATES FL-149ELT LET #4022-4-2 MIC-2S5215
N0FKALIZA7I0N C0M FL'TATI 0N S
TIME AT.EA FACT0F. FCT
47
64 68 75 9l 1 00 1 07 1 20 1 32 1 46 l 76 2 OC
553392 8654
329 738 19 119 25565 44686 43437 16718 1789 6 765 829
1.0000
1.0000 1.1000 1.0000 1.0000 1.0000
1.0000 1.0000
1.0000
l.cooc 1.ccoo
50.49 0.61
33.09 I. 74 2. 33 4. 06
3.96 1.71 1.63 0. 0 7 C . Co
PHENOL 0-CRES0L MAP-CP.ES0L 2, 6-XYLEN0L
0- ETHYLFH EN0L 2.4A2.5-XYLEN0LS MAP-ETHYLFHBJ0L> 3> 5-XYLE 2/ 3-XYLEN 0L
3. 4-XYLEN0L TM ALKYL FH ENEL AN L HI GH B0 ILEFS
19-CEC-74 TIME* 16:12 C0MFFTI TIVE PKSSPHATE ESTER JiYERCLZATES FC-150 #3503-3-1
N0FMALIZAT10N C0MPLTATI0NS
TIME AREA FACTOR PCT
45 66 73 91
1 00 1 06 1 19
1 32 145 1 62 1 75 199
5486 5 37282 100038
2671 2678 33622 3693 1 6923 7153 1355 1876 2728
1.0000
1 .0000 1. 1000
UOOGO 1.0000 l.OOOC
1.coco
1.OCGC
1.0000 l.GQCO l.OOOC 1.0000
18.27 12. 41 36*64
0.89
G.96 11.19 12.96
2*31 2.38 0*45 C* 62 0.91
PHENOL O-CRES0L MAP-CRE50L 2, 6-XYLEN0L
0-ETHYLPHEN0L 2,4*2. 5-XYLEN0LS M4P-ETHYLPHEN0L. 2* 3-XYLEN 0L 3# 4-XYLEN 0L
3j s-xyle
TP.I ALKYLFKEN0LS HI E01L
RSV 0010551
TABLE Page 2
19-DEC-74 TIM 165 15 COMPETITIVE FH05FHATE E5TEF. HYDFOLEATES MIC-255258 FYFCUEL SCF #4181-1-1
N0Fi4ALIZATI0N C0MFCTATI 0N$
TIME AREA FACTOR FCT
46 61 67 74 91
IOC 1 08 1 24 1 33 1 45
1 61 1 73 194
2 09 2 21 245
9E26C 176668
69 15 153721
6751 7827 261382 39 09 71 9 1 734 898 1 1 28454 44711 488 02 27787 7015 116376
l.GOOC l.OCOO 1.0000
I.1000 WGOOG l.CCGO l.OGCO l.OOCO uccoc l.COOO l.OOCC 1.occo uccco l.COOO i.oooo l.OOCO
5.89 11.28
C*44 10*79
0*43 0* 50 16.68 24*96 5*86
5* 73 1*82 2*85
3* 12 1*77 0* 45 7*43
FHENOL LttKNOW-- O-CRESOL e-er.E30L unknown M*F-CRES0L 2# 6-XYLENOL 0-ETHYLFKEN0L 2,412* 5-XYLEN0L M4F-ETHYLFKEN0L.. 2* 5-XYLE 2* 3-XYLENCL 3, 4-XYLEN0L
TRI ALKYL PH EN0LS AND 0THEF. HIGH BOILERS
TRIALKYLPHENOLS
RSV 0010552
Special Study S-75-SS-3
AIK MONITORING FOR PHENOL AT PORT PLASTICS
PLANT, ADDYSTON, OHIO
INTRODUCTION
This study was made to determine levels of phenol and alkylbenzenes being evolved In the cooling process of phenol formaldehyde resin at the Port Plastics Plant, Addyston, Ohio.
SUMMARY
The level of phenol In air while the alkylated product was being dropped for cooling was about 23 ppm. A sampling from the second floor gave a level of about I.A ppm and a sampling when no product was on the cooling floor gave none detected (<0.8 PPM).
EXPERIMENTAL
A Tenax GC glass Insert was used for collection of phenol in air and a Tenax GC served as the analytical column. The Bendix pump Model Cl 15 with a flow rate of 120 ml/min provided the means of sampling the air. See attached table for results. Sampling was made for two minutes.
SAMPLE CALCULATIONS
Concentration of Std
Area of Standard
X Area of Sample
Concentration
Examp1e IX
X 108241 - 21.7 ug
10 ^ X Flow Rate X Time of Sample * Volume Example IX 10~3 X 120 ml/raln X 2 min - 240 ml X 10"3 -24 I
Cone volume
yg/l
Example IX 21.7 yg/.2A0 1 90 yg/1
yg/l X 1000 X
- ppm
Example IX 90 X 1000 X
- 23.1 ppm
REFERENCE: MS File #75-23.
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 2/75 - L. M. Chapman, H. W. Dietrich
db RSV 00X0553
1 11 IX XI XIV XVI
TABLE
PhenoI NO (<0.8 ppm) NO (<0.8 ppm)
23 Ppm 1.4 ppm NO (<0.8 ppm) NO (<0.8 ppm)
Alkylbenzenes NO (<0.8 ppm) NO (<0.8 ppm)
1-5 ppm NO (<0.8 ppm) NO (<0.8 ppm) NO (<0.8 ppm)
Conments Blank 2 Min. Samp!Ing 2 Min. Sampling 2 Min. Samp!ing Not used Not used
RSV 0010554
Special Study S-75-SS-4
ANALYSES FOR ORGANICS IN AIR AT PENSACOLA
INTRODUCTION
Analyses were performed to Identify and determine levels of organics In the air from the nylon molding resin process at Pensacola. Main compounds of Interest are caprolactam and Dechiorane 25.
SUWARY
Caprolactam In levels from 0.08-8.6 ppm and 0.03 ppm of tolualdehyde (1 sample only) was found. Dechlorane 25 could not be detected under the GC conditions used. It Is questionable whether the method can be modified
to measure Dechlorane 25. No other organics were found with a detection limit of 0.02 ppm.
EXPERIMENTAL
A 0.15 Tenax GC glass Insert was used for collection with a SKC model 222-451 pump. Thirty minute samples were taken with a flow rate of 60 ml/mln. See attached table for results.
CALCULATIONS A) Concentration (ug) *
^ ^ X Area of Samp1e
B) Volume (Liters) * Flow Rate (mt/min) X Time of Sample (min) X 10~3
c ,,/, `misri;;lw>
0) PPTM - V9/S- X Molecular- Weight
Example
(Die Face) Caprolactum A) C * 6.15 ug/ 6.10 X .80 - 1 ug B) V - 10"3 X 60 ml/mln X 30 1.81
C) ug/t - .81/1.8 - .45
D) ppm - .45 X 24.5/113 - 0.10 ppm
Reference: MS File #75-30 db Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 3/75 - L. M. Chapman, M. W. Dietrich
RSV 0010555
sV
TABLE I
Extruder Nozzle(V) Extruder Hopper(III)
Die Face(VII) Change Desk(VIII) Opera tor(X)
Extruder Nozzle (XII)
Caprolactam Tolualdehyde
8.6 ppm
0.03 ppm
N.D. (<.02
ppmT
0.10 ppm
0.16 ppm
N.D. (<.02
ppmT
0.08 ppm
No other organics were detected. Detection limit 0.02 ppm.
RSV 0010556
Special Study S-75-SS-5 IDENTIFICATION OF MINOR COMPONENTS IN ETHYL BENZENE AND TETRACHLOROPHTHALIC ANHYDRIDE INTRODUCTION This analysis was performed to Identify unknown components In ethylbenzene and tetrachlorophthallc anhydride (TCPA) which might Inhibit catalyst perform ance at the Oelaware River Plant. SUMARY The results of the analysis are shown In Table 1 and In attached GC/KS chromatograms. EXPERIMENTAL GC conditions are given In Table II. The ethylbenzene was also run on a flame photometric GC In the sulfur detection mode. The latter confirmed that no volatile sulfur compounds were present. Reference: MS File #75-40.
db Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 3/75 - L. M. Chapman, M. W. Dietrich
RS V 0010557
Peak* 1 2
3
4 5 6
TABLE I
ETHYLBENZENE
Identlflcation
Benzene
m 98: possibly dimethyl or
methyl pentanone
MW 100: possibly methyl Isobutyl ketone or hexanone or methyl pentanone
Toluene
MW 112: possibly dimethyl cyclo hexane or trlmethyl pentene
MW 112: possibly acrolein dimer or dimethyl hexene
*$ee attached chromatogram for peak number reference
Peak*
TCPA Identification
1 Tetrach1oroben zene
2 Pentachlorobenzene
3 Hexachlorobenzene
RSV 0010558
TABLE II A HP 5700 GC and HP 5980 mass spectrometer were used for Identification analysis using one microliter Injection of the neat solution.
Conditions for Ethylbenzene Column: 3* OV 101 1m with a 1/8" I.D. Program: 0 - 70C 9 4/M1n Hass Gain: 5 Mass Scan: 10-400 amu
Conditions for TCPA Column: 3% OV 101 1m with 1/8" I.D. Program: 100-160 9 8/M1n Hass Gain: 4 Mass Scan: 10-400 amu
RSV 0010569
U SPECTRUM DXSPUttVESXT ** GALAXY SB DEL RJUgR, GAM 5 REPEAT
nm 0978 PAGE 1 16#K
b ***"
RSV 0010560
TV1P*
H SFECTRUH OZSPLRV^GDXT SS TCPA tCLUARE RXUER
l&l 191-168 MBCGsrtXN 8-84-71 UK 17 48 93
Pm 8873 pmc i tan
0*
RSV 0010561
Special Study S-75-SS-6
J. F. OUEENV PLANT STANDARD OIL AND GREASE RESIDUES
SUMMARY
Residues from the standard "Oil and Grease" test were found by GC/MS to
contain 35 to 45% Monsanto products or Intermediates. The remaining residue could be "Oil and Grease".
DISCUSSION
Five samples of residue obtained by Standard Method No. 137. American Public Health Association, as applied to the Clean Acid Stream were analyzed by GC/MS. The results are given In the following table.
TABLE
COMPONENTS OF RESIDUESTKOM THE STANDARD OIL AND GREASE
ON CLEAN ACID STREAM
Sample Identification
Percent Butyl
Percent Accounted Percent Phthalyl Butyl Percent Other
Lasso
Glycolate
Materials
Hexane 8/26-8/30 Freon 8/26-8/30
35-45 30-40
35-45
N3-4 5-7 /^2h'09 (^-n-c-ch2 cy
Freon and Hexane Combined 9/20-9/27
Freon 10/4-10/11
Freon 10/12-10/16
35-45 35-45 60-70
21-27 9-11
24-28
14-18 16-21 24-28
10-13 Not Identified 12-14 Not Identified
The material "not Identified" represents 8 to 10 GC peaks of about 1% concen tration. The diethyl aniline derivative
HS N-C-CHg Cl is related to Lasso production.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
3/75 - G. W. Mappes, M. W. Dietrich
RSV 0010562
Special Study
S-75-SS-7
RADIOACTIVITY' IN DIPHENYL OXIDE INTERMEDIATES, FINISHED GOODS AND ENVIRONMENTAL EFFLUENT
INTRODUCTION
Manufacturing and Research representatives held a meeting on 2-5-75 in St. Louis to review status of data required for a radioactive materials license application to the state of Texas for the new thoria catalyst diphenyl oxide plant to be built at Chocolate Bayou. The status of this application and additional information required is summarized in D. R. Miller's meeting report of 2-26-75 (Reference 1). This report sum marizes results and conclusions of the additional research support requested at that meeting.
SUMMARY
1. Gamma spectrometry was investigated as an alternative/ supplementary radiochemical analytical tool to liquid scintillation spectrometry for measuring radioactivity. In crude DPO, distillation fractions, refined DPO and miscellaneous samples such as vent traps, filters etc. Sensitivity comparisons between gamma and liquid scintillation spectrometry were made on selected crude DPO distillation fractions including refined DPO.
2. Radioactivity material balance measurements were pro vided for a pilot plant scale crude DPO distillation. This experiment was carried out under "worst case" plant simulated time table to learn (a) if measurable radioactivity was present in refined DPO, (b) the fate of short half-lived Radon 220 and daughter products in crude DPO distillation, and (c) if significant longlived radioactivity (Thorium) was present in still bottoms
5* Before-and-after radioactivity measurements were pro vided for evaluation of the effectiveness of a 10 micron opening Teflon disk filter for removing radioactivity from crude DPO.
4. Radioactivity measurements were provided to estimate the amount of radioactivity vented to atmosphere from the crude DPO storage tank under plant simulated "worst case" conditions.
5. Analysis for long half-life radioactivity was made on selected distillation residues and crude DPO samples. A similar investigation was also made on Teflon filter disks from crude DPO flltratlons.
RSV 0010563
Special Study
S-75-SS-7
Page 2
CONCLUSIONS
1. _ Gamma spectrometry has been demonstrated to have sensi tivity greater than 2 x 10" uci/ml for thorium in DPO process materials. Data appear in Table 1A and footnotes. Comparison with liquid scintillation spectrometry indi cates the gamma method better for dark crude DPO, distillation residues, carbon filters etc. However, liquid scintillation on refined DPO and light colored scintillator-soluble samples is 5-100 times more sensitive than gamma spectrometry (Table IB).
2. The determination of the fate of radioactivity from crude DPO in a plant simulated distillation showed It to be completely held up in the still pot. No detectable amounts were present in the refined DPO. The pilot plant distillation did not employ filtration or vacuum transfer of crude DPO, but did attempt to simulate plant "worst case11 conditions by distillation of the final eight hours of crude DPO production to maximize total radioactivity present. Results appear in Table 2.
3. Filtration of crude DPO through a single 10 micron opening Teflon disk gave no detectable reduction of short-lived radioactivity.
4. Radioactivity vented from the pilot plant storage under plant simulated "worst case" conditions was completely held up in the first of a train-of-three granular active carbon filled absorbers (Nuchar WV-W, 80 x 30 mesh) and was calculated to be equivalent to 9 x 10~7 uci/ml (air) of thorium. The "worst case" conditions were the total filling of the DPO storage container over an eight-hour period totally displacing gas space into the train of absorbers.
5. A very small (unquantlfled) amount of long-lived radio activity (natural thorium plus daughters) has been found to come forward with crude DPO from the reactor and has been found on filter disks and in distillation residues. Additional work Is needed to quantify results since the total amounts of crude DPO used and the quantitativeness of retention/transfer of radioactivity was not suffi ciently documented. All samples associated with eight hours or less of crude DPO production show no detectable levels of long half-life radioactivity (less than 2 x 10- uci/ml thorium) after 120-140 hours monitoring. Data on the individual samples is given in Table 3*
RSV 0010564
DETAILS
Special Study
S-75-S3-7 Page 3
Determination of Radioactivity Vented to Atmosphere from Continuous Pilot Plant Crude DPO Storage
Absorption Apparatus
Radioactivity absorbers were prepared by filling three pyrex glass tubes 23 mm diameter x 60 mm long open at both ends with Nuchar WV-W, 80 x 30 mesh carbon. The
carbon was held In the absorber with a small wad of
glass wool on each end and a one-hole rubber stopper. The absorbers were close coupled In series with short lengths of glass tubing. The absort>er tubes were designed to permit insertion into the count well of the 2x2 Nal detector of the RIDL gamma counter after
replacement of the end connectors with thin flushmounted rubber stoppers.
Absorption Experiment
The pilot plant crude DPO effluent tube was connected to an empty 2-liter Erlenmeyer flask through a two-hole
stopper. The series train of 3 carbon absorbers was attached to the discharge opening of the collection flask. An electronic timer switch was set to divert the last eight hours of crude DPO production (prior to catalyst bed regeneration) to the special receiver. Sufficient crude DPO was collected to totally fill the receiver and exit line to the absorbers forcing the original 2 liter air volume through the absorber train. Care was then taken that no crude DPO reached the first absorber by holding the absorber train vertically as the line was filled with liquid and diverting flow Just before liquid reached the absorber inlet.
Quantification of Radioactivity Found In Carbon Absorbers
Immediate check for radioactivity in all three absorbers showed detectable levels only in absorber No. 1. Further counting of absorber No. 1 with inlet and exit ends of the absorber inserted into the detector well respectively indicated higher activity at the inlet side. A radio activity standard was prepared by addition to a section of stoppered glass tubing Identical to the absorbers, 9 ml deionized water, 0.5 ml concentrated nitric acid and 0.0169 gram Thorium (250 >ul of a standard prepared by dissolution of Thorium oxide pellets from the reactor catalyst stock). After mixing the liquid contents the
carbon charge (8.4 g.j was added to the tube. An addi tional 1.5 ml deionized water was added to bring water level to top of carbon. The tube was stoppered* mixed and counted. The radioactivity in absorber No. 1 was measured in the same way. The absorber was opened and
and the carbon removed and mixed to better distribute the
RSV 0010565
Special Study
S-75-5S-7
Page 4
radioactivity. Die deionized water and nitric
were
to the aipty arimrber tube and the mixed carbon charge was
back.
_ Additional water was added to cover the carbon and the
tube was then stoppered, mixed and counted 20 minutes.
The same quantity or unexposed carbon, water, and nitric
acid was prepared and counted as a background sample.
The following count data was obtained. (See Page 4A)
REFERENCES
1. mDP0 Radiological Licensing/Safety Research Center Meeting", D. R. Miller, 2-26-75-
.2 Notebook Pages MIC 254342-254400, 269401-296406 (D. Hines).
Notebook Pages MIC 296001-296063+ (D. Hines).
4. Notebook Pages MIC 0R214268 (J. E. Silver).
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Missouri 4/75 - D. B. Hines, M. W. Dietrich
RSV 0010566
stuuy --o
`t*.
O O
<N
RSV 0 0 1 0 5 6 7
.Sample
Absorber f-*l
Carbon Background
Standard
Tlme
Clock
Elupsed
(Hrs.)
3:08 PM 12.7
2:43PM
Min. Counted
10.0
10.0
Total Counts
7927
2348
Total cpm
792-9
--
Background (235) 234.8
Net cpm
558
--
Remarks
Thorium Standard 2:27PM
10.0
9317 931.7
(217)
715 O.OI69 g* Thorium
DPO Crude 10:28AM 8.0
5.0 23211 4642
(217)
4425; Elapsed time - 0
3:16 PM 12.8 hr. 5.0
Deionized
Water, Background
Sample
8:48AM '1:20PM
20.0
18672 3734
4293
4378
--
(217) 214.7) 218.9)
3517! 217
Decay correction standard and backgound
The net cpm radioactivity found In the carbon absorber wa3 corrected to zero elapsed time using the crude DPO decay standard. Itils result was computed as equivalent Thorium using the thorium standard and expressed as equivalent uci thorlum/ml using the "empty" volume of the crude storage tank as representing the volume of radioactivity discharged to environ
mental air.
Calculation:
1. Absorber count data corrected to time zero 558 x 4425 5517
702 net cpm
.2 Thorium equivalence of absorber corrected count data 702 x O.OI69
5. Radioactivity expressed as thorium equivalent per ml of crude DPO storage tank displaced air *
1.84 x 10"3 uci Th 2 VTOT ml
9 x IQ"* uci Th/ml
0.0166 g Th 1.84 x 10"3 uci Hi
Sample ..(SinzUe
5 20 20 400 400
TABLE 1
'pedal Study S-75 -oS-7 Page i)
ANALYTICAL SENSITIVITY OF GAMMA AND LIQUID SCINTILLATION SPECTROMETRY FOR THORIUM
A. GAMMA SPECTROMETRY - AQUEOUS THORIUM STANDARDS Sample Radioactivity
Count Period
(min)
Thorium Present (grama) .
net cpm (20)
uoi (!)
Thorium per ml.
1
Sensitivity^
grams/mi.
Uftl/tal.-------
O
1*
1
0.3397
20.800 (+288)
2.5 x 10"3
2.24 x
2.49 X 10"*
1-5
0.3397
14,509
1.9 x 10"3
1.38 X 10- +
0.8 x X0-
(+248)
20
6.76 x 10~4
28.7
3.75 X 10-"
1.17 X 10-*
1.30 x 10-
(+9.9)
10
1.69 X 10"3
2i.6
4.69 X 10"T
2.86 x 10"
3*2 x 10"7
10 5.38 X 10
(+14.5)
50.7 (+10.8)
9.38 x 10~T
1.80 X 10"a
2,0 x 10"7
ASV 0 0 1 0 5 6 8
Sample
Crude DPO
Phenol-Water Cut 1
(Top phase)
B. LIQUID SCINTILLATION - CRUDE DPO AND DISTILLATION CUTS
Sample Size
(ml)
Scintillator and Volume
Thorium Added As Int.Sfcd. (grams)
Sample Radioactivity -------------- u7i~Ti)
net cpm (26)
Thorium per ml.
(2) Sensitivity
grams/ml.
uci/ml.
2.0 Packard Instagel/ 0.006758 577+15 18.0 ml.
0.86 x 10"4 1.36 x 10"7 1.51 x 10_a
Packard Instagel/ 2.0 20.0 ml.
11
03
-- 2.22 x 10~a 2.47 x 10_T
Phenol-Water Cut 1
(Bottom Phase)
3*0
11 19*0 ml.
it 0+3
Refined DPO
10.0
m
10.0 ml.
n 0+3
4. S* it
; n J* / ^ V
r
-- 1.23 x KTa 1.37 x XO_B - - 6.36 x 10"7 7.07 X 10"fl
Table 1 Footnotes
Special Study
S-75-SS-7
Page 6
(l) DPO process gamma radioactivity may arise from both
short- and long-lived nuclides. It Is not practical
to duplicate the many gamma energies in the short lived radioactivity of DPO samples with calibrated
long-lived standards in order to determine precise counting efficiencies and permit expressing the radio activity levels in the regulatory units of ucl/ml for
each nuclide. Instead, the catalyst thorium oxide catalyst pellets which contain these short-lived along with longer lived daughters are dissolved and used
as the radioactivity standard. The "catalyst thorium" with its mixture of daughter products is taken to be the "natural thorium" given in the AEC regulations (Part 20, Appendix B). The use of this material as a radioactivity
standard has the advantage of a regulations defined weight/radioactivity relationship: 9000 Kg thorium natural equals 1 curie. Therefore, all radioactivity in DPO process samples is expressed as that of an
equivalent amount of catalyst thorium radioactivity measured under the same conditions.
(2) Method sensitivity is taken as that quantity of
thorium catalyst standard giving the net counts per
minute equal to twice (2a) the theoretical or experi mental standard deviation of the background determined for the same period of time.
Example:
The background of 20 ml of distilled water counted in a gamma count vial for 20 minutes is 4^52 counts. The theoretical standard
deviation is
a = + ^ cpm - +
= 3*3 cpra
where N is the total number of counts taken and 20 is the minutes counted.
The thorium standard used in this study counts
42748 net cpm/gram thorium per 20 ml sample. The sensitivity is then determined as
. - 2(fN) _ 2(5.3) = *(grams thorium) 42748 T2746-- Since 9000 Kg natural thorium 1 curie
9 grams thorium * 1 uci and
x 10-*
Suol thorium * 1-^4-
- 1-72 x 10-*
Since 20 ml samples are used
1.72 x 10'S - 8.58 x 10-T ucl thorium/ml. S " ---------- 25-------- - 0.86 x 10-6 "
RSV 0010569
Special Study
S-75-SS-7 Page 7
TABLE 2
CRUDE DPO DISTILLATION EXPERIMENT (DISTRIBUTION OF RADIOACTIVITY.DETERMINED
BY GAMMA COUNTING Co))
Component
Weight (grams)
Crude DPO Charge 2006
Thorium __________
net cpm
per 20 g.
(20)
uci/ml.
3487 + 29^
(32898T + 2748) (Total charge)
4.5 x 10~4
Method Sensitivity'
! 2a \
(uci/ml.)
'
(0.86-1.3) x 10'"
Phenol-Water Cut 1 Top phase Bottom phase
90
Phenol Cut
1261
0-9-6 + 9*5 0 + 9-3
0-8.6 + 9-3
ND 1.3 x 10"8
ND A 1.3 x 10"a
it 11
11
Phenol - DPO Slop Cut
Refined DPO Cut Column Holdup Residue Still Pot Rinses Cold Traps Unaccounted for
138 399
84 15 -- 3 16
0-10.9 + 9-5
11.0 + 9*5
27-0 + 9*5 38,448c4)
(5) 290,997
--
--
ND * _ 1.3 x 10
ND* 1.3 x 10*8
3.5 x 10"8
5000 x 10~8
37,818 x IQ"6
--
--
it n 11 11 11
---
Table 2 Footnotes:
(1) See Footnote 1, Table 1.
(2) See Footnote 2, Table 1.
(3) The radioactivity of ;fresh crude DPO may hold fairly constant or increase slightly for the first few minutes of elapsed time due to the rapid decay of Rn-220 and Po-2l6 and the buildup of longer lived Pb-212. On older samples the radioactivity holds fairly constant for about the first hour, Ihis value Is the average of the first five
5-minute counts of the crude DPO distillation charge.
(4) Hiis level of radioactivity is obtained by applying a linear extrapola tlve based on the ratio of radioactivity in crude DPO at time 0 and at an elapsed time equal to that of the sample(s). TOiIs is not
strictly a linear relationship (Fig. l).
RSV 0010570
Special Study
S-75-SS-7
Page 8 Table 2 Footnotes (continued) (4) (continued) The actual radioactivity balance in charged DPO crude
and still bottom residue at the end of distillation was made at the more linear region of the decay curve at the 500-600 elapsed minutes region. (5) The major portion of the radioactivity balance was recovered as a series of eight rinses of the still pot in this order: 1 - acetone, 2-acetone, 3-aqueous radlac concentrate, 4-aqueous radlac concentrate, 5-acetone, 6-chloroform, 7-chioroform, 8-10# HP. (6) The gamma counting was performed on a Radioactive Industry Develop ment Laboratory (RIDL) modular single channel analyzer utilizing a RIDL 2" x 2" Nal (T l) well crystal detector. Well dimensions are 1 inch diameter x 1-1/2 wide deep. Instrument count parameters were optimized using the thorium catalyst standard. Twenty milli liter samples were counted for periods of 1-30 minutes in the evaluation.
rs v 00X0571
Page 9
0. U
*
RSV 0010572
Special Study
S-75-SS-7
Page 10
TABLE 3
EXAMINATION OP THORIUM CATALYST DPO PILOT PLANT PROCESS SAMPLES FOR LONG-LIVED RADIOACTIVITY________
A. SAMPLES FROM CRUDE DPO DISTILLATION (8 HRS. OF PILOT PLANT PRODUCTION, RUN E-327)___________________
____________Sample________
Elapsed Time . fhrs.)
N^t^cym
Count Method
1- Still Pot Residue
2. Still Pot Rinse 3 (Radlac Concentrate)
3. Still Pot Rinse 6 (Chloroform)
4. Still Pot Rinse J (Chloroform)
0 40 73 139 161
0 73 140
0 120 137 189
0 120 138
22,049 1,866
211 + 11.5 0 + 9.2
0.9 + 6.2
60,043 520
1-9 7-3
39,912 ^ 25.9+ 7.6 29-3+ 6.6 24.5+13-2
27,190 33.2+ 7.7 28.1+ 6.5
Gamma
it tt ti I!
Spectrometry
II ft tl II
II tt II II It It
II tt ft II It 11 M If
tt II
M If II 1,
B. CRUDE DPO, RUN E-331 FRACTIONS 0-23 AND 24-57 MINUTES FOLLOWING
CATALYST REGENERATION
Elapsed
Fraction
Time (Hrs.)
Net Com 26
0-23 Min.
23-57 Min.
Count Method
0
12,652
6,067
Gamma Spectrometry
4-5 12,485
7,U7
70 187.6 + 9.6 115-7 + 11.4
100
31.6 + 6.6
19*5 + 6.7
11
M
125 10.6 + 5.9 5.2 + 8.5
145
4.0 + 13.1
0 + 8.5
RSV 0010573
Special Study
S-75-SS-7
Page 10A
TABLE 3 (Continued)
C. TEFLON FILTER DISK FROM CRUDE DPO FILTRATION
Sample
DPO Crude Batch
Elapsed
Time (Hrs.)
Net cpm (2tr)
10 micron opening Teflon Filter Disk,
Acetone Rinsed
a)
0 4
19 27 48
67 140 164 212
237 310
331 364
57,896
53,737 20,333 14,665
3,321
923 30.4 24.8 + 3-6
24.6 + 7o 27.4 + 3.9 20.8 + 4.9
25.2 + 4,1 21.8 + 4.6
10 micron opening Teflon Filter Disk, Acetone Rinsed
E-3 28 (Last
8 hours Collection)
0 26 94 120 150
172
19,912
5241 + 65
65*6 + 7-3 10.5 + 2.8
2.1 + 1.2 0.0 + 1.6
Count Method Flow
Proportional Counting
ti
(l) Sample came from a filtration technique evaluation and represent an estimated 4-000 ml crude DPO. The container, however, had been
used to collect numerous batches.
RSV 0010574
TABLE 4
jpeclal Study S-75"o.'j-7 Page 11
Sample Crude DPO Charged to distillation
Phenol - Water Cut 1 Top Phase
Bottom Phase
Phenol Cut Refined DPO Cut Phenol - DPO Slop Cut Column Holdup
CRUDE DPO DISTILLATION FRACTIONS COUNT DATA UNCORRECTED TO TIME ZERO
Clock Time
a)
Total Counts
8:05AM 8:15AM 8:19AM 8:25AM 8:32AM
8:55AM 9:00AM 11:12AM 12:30PM 2:56 PM
4:50PM 7:05PM
18,560
18,389 18,587 18,485
18,499 18,184 18,048
16,572
3,087 13,484 12,050 10,701
Min. Counted.
5.0 5.0 5-0 5.0 5.0 5.0 5-0 5.0 1.0 5-0 5-0 5-0
Total
cpm
_Remarks
i
3712) 3678) 3717) 3697)
3697)
3637 3610 3314 3087
2697 2410
2140
Average of first 5 counts * 3701 + 27.6 (2o )
9:42AM 9:47AM 11:34AM 12:25PM
10:01AM 10:11AM 10:43AM
197 2,215 4,517 4,334
218 2,225 4,289
1.0 10.0 20.0 20.0
1.0 10.0 20.0
197 222 226 217
218 223 214
2 :08PM 4,477
20.0
224
1:27PM 4,519
20.0
226
2:29PM 4,507
20.0
225
2:50PM 4,727
20.0
236
RSV 0 0 1 0 5 7 5
Footnotes -- see following page
Special Study S-75-SS-7 Page 11A
Sample
Residue as received (15 grams)
Clock Time
(1)
TABLE 4 (continued)
Total Counts
Min. Counted
Total c pm
12:26PM 44,604
1.0
44,604
Remarks
1
Residue diluted to 20 ml. with acetone
Still Pot Rinse 1 (Acetone, 20 ml.)
Still Pot Rinse 2 (Acetone, 20 ml.)
Still Pot Rinse 3 (Radlac, 20 ml.)
Still Pot Rinse 4 (Radlac, 20 ml.)
6:05PM 111,419
1:03 PM 6:55PM
4,885 12,973
1:05PM 6:35PM
1,618 5,227
3:53PM 71,680 6:50PM 301,392
4:43PM 12,306 6:57PM 54,436
5.0
1.0 5-0
1.0 5.0
1.0 5.0
1.0 5.0
22,284
4,885 2,595
1,618 1,045
71,680 60,278
12,306 10,887
RSV 0 0 1 0 5 7 6
Still Pot Rinse 5 (Acetone, 20 ml.)
Still Pot Rinse 6 Chloroform, 20 ml.
Still Pot Rinse 7 Chloroform, 20 ml.
Still Pot Rinse 8 9, 10 (10# HF, 20 ml.)
Charcoal Absorber 1
Charcoal Absorber 2
6:20PM 28,234
5-0
5,646 40 ml. rinse, 20 ml. counted
5:03PM 41,670 6:45PM 200,736
6:12PM 137,126
1.0 5.0
5.0
41,670 39,912
27,190
5:51 5:57
2:50PM 3:04 PM
3:06 PM 3:UpM
5,969 29,972
228 979
235 1,162
1.0 5,969 60 ml. rinses combined, 20 5-0 5,994 ml. aliquot counted
1.0 5.0 i\
1.0 5.0
228) 196)
235 ) 232)
Absorbers used between still overhead rec and vacuum pump
Special Study 3-75-S3-7 Page 11B
TABLE 4 (Continued)
Sample
Clock Time
u>
Total Counts
Min. Counted
Total cpm
Remarks
Steel wool from DPO Product
line of Distillation Equip-
ment
3:20PM 221 1.0
221
Deionized Water. 20 ml.
9:50AM 11:06AM
4:14PM 5:44PM 7:20PM
2,140
*1,352 4,664
4,747 2,372
10.0 20.0 20.0 20.0 10.0
214) 218
233, 257 237)
Sample
was used as background sample.
Footnotes:
(1) All measurements for radioactivity material balance made on 3-11-75*
Time "0" taken as 8:19AM since the 2o confidence limits of the average of the firet 5 five minute counts of crude DPO was indistinguishable from the difference of 1st and 5th count.
RSV 0010577
Special Study
S-75-SS-8
TRACER LITHIUM ANALYSES - NITRO PLANT EFFLUENT
SUMMARY
Lithium is used as a tracer to observe the dilution of the Nltro plant liquid effluent. Thirty-one effluent samples ranging from 0.05 to 0.13 ppm LI were analyzed by atomic absorption. DETAILS
The samples appeared uniform but cloudy, almost neutral. Cursory analyses showed much sodium, calcium, but less than 1 ppm Li. Both air-acetylene and nitrous oxide-acetylene flames were tried, and the Boling burner. The latter produced acute curvature. The best ratio of response over noise was found with the nitrous oxide burner using air-acetylene as a strongly oxidizing flame. The effects of sodium ion and acid addition were checked. These did not affect the base line run in water. Hydrochloric acid addition had no effect on the sample response. All samples contain sodium which produces enhancement. There is a matrix effect, cause unknown, therefore the method of standard additions for calibration was chosen. Because this method is very time-consuming and because the most dilute sample would have a response of only ten times the noise level, the method was applied to a random selection of five of the samples. All of the samples, including the selected five were run directly, without dilution and without additions. Each sample was agitated, then allowed to stand for one minute before analysis. Each sample was run at least twice, using deionized water as reference. The standard addition zero level was run before and after its set. The five standard addition ppm values were graphically plotted against their direct run absorbance values. The "best line" through this plot was used as the calibration curve from which each sample's absorbance value was read to pro vide the corresponding ppm as listed in the table.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
4/75 - 0. E. KInast, M. W. Dietrich
RSV 0010578
Sample Number
I2 3 4 5 6 7 8 9 10 11 12 13 14 15 16
ppm Lt 0.046 .136 (0.134)* .129 .124 .124 .122 .121 .119 (0.122) .115 .113 .111 .108 .104 .100 (0.096) .098 -093
Sample Number
17 18 19 20 21 22 23 24 25 26 27 28 29 30 31
ppm LI 0.087
.085 -079 .076 (0.074) .071 .070 .068 .066 .061 .059 (0.061) .057 .055 .052 .051 .049
Values In parentheses were obtained by method of standard additions
RSV 0010579
Special Study
S-75-SS-9
MALEIC ANHYDRIDE REFINING PROCESS IMPURITY
SUMMARY
An Impurity with a boiling point between maleic anhydride and dibutyl maleate was observed In the refining step for new process maleic anhydride. The possibility that this Impurity could cause quality problems required that It be Identified. NMR, IR, and two types of mass spectroscopy were required to Identify the Impurity. It was Identified as
H
lH ! CH3-CH2-CH2-CH2-0-C^ t * 0
DISCUSSION
GC analysis of a residue from the maleic refining process showed two unknown impurities which eluted between maleic anhydride and phthallc anhydride. These are designated peaks A and B In the figure. Elec tron Impact GC/MS did not give molecular weight Information on either Impurity and showed unusual fragment Ions for peak A.
The IR spectrum of B trapped from the GC separation showed that It was dibutyl maleate. Although succinic anhydride has the same retention time as dibutyl maleate on the GC column used for this analysis, no succinic anhydride was observed In the IR spectrum with a detection limit of 5 to 10% of the dibutyl maleate concentration.
The IR spectrum of peak A trapped from the GC separation suggested that this material was not one of the expected process Impurities and that It had some unique structural features. GC/MS analysis of peak A using chemical Ionization mass spectrometry Indicated a molecular weight of 156. Hexane extraction of the residue produced a large enough sample of Impurity A for NMR analyses. This analytical data indicated Impurity A has the structure shown above. Since this Impurity was obtained by extraction as well as GC separation, It could not be the result of some sample decomposition during the GC analysis.
db Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
5/75 - G. U. Mappes, B. Katlafsky, 0. E. Klnast, M. W. Dietrich
RSV 0010580
P h th a llc A nhydride
.3A Veo
U
40
40
O-
3a no i j
ASV 0010581
At
j6u t ^ * yI*+*
C>-$ A
Special Study S-75-SS-10
ANALYSIS OF BENZENE IN AIR AT ANNISTON. ALABAMA PLANT
INTRODUCTION `
The purpose of this investigation was to determine worker exposure to benzene,
SUMMARY
The first three sets of samples collected over an 8-hour day were all below 5 ppm. One high non-representative sample was
found due to direct exposure of the collection tube to a benzene bath. During this study*we found that benzene vapors slowly permeate the teflon tape used for sealing the ends of the collection columns. This gave detectable levels of benzene in tubes used as blanks at Anniston. Tubes kept in St. Louis
did not have detectable levels of benzene. The levels given in the tables should be considered maximum exposure values since as much as 3 ppm may be due to this benzene blank.
The fourth set of samples were taken for fifteen minutes in
high exposure regions of the benzene process. The results are given in Table IV. As much as 39 ppm benzene was observed.
EXPERIMENTAL
GC/MS was used in the verification of benzene and calculations
are based on a benzene standard. An example of the calculations is given below. Results shown for the blanks were calculated on the basis of the same volume of air used for the samples.
Calculations
Volume of Air . pump flow rate x sampling time x io*3
Sampled (liters) (ml/min.)
(min.)
Wt. of sample (pg)
area sample peak x cone, std. (jug/4ul)Vol. ln,1. (ul)
(counts)
Area of sta. ;counts)
Concentration of sample (Mg/1)
Concentration of sample (ppm)
Weight of sample (jug) ______ Volume of air sampled (liters)
24.5
Mg/1 (sample) x fOT (sample)
RSV 0010S82
\
Special Study S-75-SS-10 Page 2
For Sampling #2 of Set 4
' Volume of air sampled (liters)
817 ml/rain, x 15 min. x 10~3
Wt. of sample
(ms)
h695 X 1
x 1.0
15^2
Cone. Benzene (fig/1)
1542 . 126
12726
Cone. Benzene (ppm)
39
12.26
Reference: GC/MS File #75-24
Monsanto Industrial Chemicals Company Applied Sciences Section St. Louis, Missouri
4/9/75 - L. M. Chapman, M. W. Dietrich
RSV 0010583
Special Study
S-75-SS-10 Attachment - 1
TABLE 1
Set I Pump flow, 20 ral/mln. (Model 222-451 SKC pump) Sample Time, 8 hr.
Tube
#3
#4 #5 # 1 (blank)
ppm of Benzene 0.2 0.7 0.7
lost In analysis
TABLE II Set II
Pump flow, 20 ml/min. (Model 222-451 SKC pump) Sample Time, 8 hr.
__________ Tube #16 (blank) # 6 (St. Louis blk.) #17
#18
#19 #25
ppm of Benzene
0.4
0.02 x not a representative
120.0 sample because of direct exposure to benzene.
4.2
1.5 0.2
RSV 0010584
Special Study
S-75-SS-10 Attachment - 2
Set III
TABLE III
Pump flow, 20 ml/min. (Model 222-451, SKC pump)
Sample Time, #1 and #2 - 8 hr, and 15 min. Remaining samples - 8 hr.
Tube #1 #2 #3 #4 # 5 (blank) # 6 (St. Louis blk.)
1.0 1.0 1.4 2.3 1.5 0.02
TABLE IV Set IV
Pump flow, 817 ml/min. (Model C-115# Bendlx pump) Sample Time, 15 min.
________Tube
#2
#3 # 4 (blank) #5
#16
#17 (sealed blk.) #25 (St. Louis blk.)
ppm of Benzene
39. 33.
3.0 x
High level
21.
0.7
0.3
x shut down Instrument
RSV 0010585
Special Study S-75-SS-11
ANALYSIS OF VOLATILES IN DECATUR. ALABAMA PLANT AIR (III)
INTRODUCTION This Is a continuation of an Investigation to determine concentration levels of vinyl acetate (VA) and acrylonitrile (AN) In air at the north continuous polymer area of the Decatur, Alabama plant. The data obtained will be used to Identify areas where worker safety problems may exist.
SUMMARY Results of the study are found In Table I. 6C/MS provided the means of Identification of the volatiles. Acrylonitrile had values of from 0.4 to.2.4 ppm while vinyl acetate values ranged from 0.2 to 1.0 ppm.
EXPERIMENTAL Refer to Spectroscopy Method 74-7 for the analyses procedure used. Ten minutes was allowed for the heating of the external collection column to collect the acrylonltrl1e before proceeding as In Method 74-7. Adaptions of hardware have been made for our new HP 6C/MS. An example of the procedure used to calculate concentration Is given In the S-75-SS-1 report. Sample collection was made using a Model 222-451 SKC pump. Calculations were based on known VA and AN standards.
Reference: GC/MS File #75-57.
db Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 4/75 - L. M. Chapman, H. W. Dietrich
RSV 0010586
TABLE I
*M-3
#7 Reactor cleaning-chipping scale and removal by operator
m
TR VA
<2.4 <1.0
M-4 Reactor overflow sampling and cleaning
0.4 0.9
M-5 Changing filter cloth on B line secondary filter
0.5 0.2
^Values for M-3 are maxlmums because of possible Interference of other components when calculating concentrations.
RS V 0010587
Special Study S-75-SS-12
ORGANIC CHEMICALS IN CHOCOLATE BAYOU PLANT HATERS
SUMMARY
Haters from various places In the steam and water systems at the Chocolate Bayou plant were analyzed for organics to determine Its suitability for the sorbic acid process. No organics were found in the finished water samples with a de tection limit of 0.5 ppm total. Low levels of aliphatic compounds were found In steam condensate samples.
DISCUSSION
Hater for plant usage Is taken from the Brazos River, filtered, passed through water softening resins, flash evaporated and pimped to various plant uses. Two sauries of water from each of four points in the purification were taken for analysis. One sample of each pair was acidified to pH*2 with sulfuric acid. Two additional samples of condensate returned from steam usage were also analyzed. One was from the phenol process, the other was from the ethylene process. The results for these samples are given In the table.
The filtered water Is river water which has been filtered only. The polished water has been filtered and softened. The evaporator water has been filtered, softened and flash evaporated to remove dissolved solids. The nedlun pressure water Is polished water and condensate returned from steam usage. All were analyzed by methylene chloride extraction as outlined in Spectroscopy New Technique 70-3. Identification was done by GC/MS and IR. Extractable organics were found In only the steam condensate. GC/MS analysis of these organics showed that they were a series of aliphatic compounds. IR showed definite nitrogen content. This suggests that these compounds are related to the Inhibi tor used In the steam lines and probably are decomposition products of the inhibitor. The total organic Carbon TOC values for the steam condensates were done using the Envlrotech DC-50 Organic Analyzer.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
5/75 - G. H. Mappes, 0. E. Klnast, M. H. Dietrich
RSV 0010588
ORGANICS IN CHOCOLATE BAYOU WATER
Filtered Water pH 6 pH 2
Extractable Organics Total iE51
<0.5 <0.5
Polished Water pH TO pH 2
<0.5 <0.5
Evaporator Water pH 8 pH 2
<0.5 <0.5
Med. Press. Water pH 10 pH 2
<0.5 <0.5
Steam Condensate Phenol Process
0.5 to 1.0
Steam Condensate Ethylene/Hydrocarbon
Process
1.0 to 1.5
Phenol
<0.2 <0.2
<0.2 <0.2
<0.2 <0.2
<0.2 <0.2 <0.2 <0.2
TOC (ppw)
<5* <5*
<5* <5*
<5* <5*
<5* <5*
6+2
7+2
Determined at Chocolate Bayou
ft$V 0010569
Special Study S-75-SS-I3
DETERMINATION OF BENZYL CHLORIDE IN DELAWARE RIVER PLANT AIR
INTRODUCTION
Personnel monitor for benzyl chloride tn elr to determine worker exposure levels at the Delaware River plant was carried out In the $-160 department.
SUMMARY
See the attached table for results. Levels of benzyl chloride found were <0.1 Ug/A. Other components Identified were toluene, xylene, chlorotoluene, chloro benzene, dichlorobenzene, dichlorotoluene, and naphthalene. Levels of these components can also be found tn the table.
EXPERIMENTAL
Tenax GC was used for collection and analysis. GC/MS was used for Identification. Calculations are based on a benzyl chloride standard. Air sample sizes were between 7 and 16 liters with flow rates between 35*65 ml/mln.
Calculations
Volume of A!r Samples (Liters)
Pump Flow Rate (rnA/mln)
SanpHng Time v tA_*
(min)
X 10
Weight Sample (vg)
Concentration Sample (lig/L)
For Sampling OP-1
Area Sample Peak * Cone. Std. (liq/ut) xVol. Injected (uL)
(Counts)
*
Area of Standard (Counts)
Weight Sample (yg)/Volune of Air Sampled (Liters)
Volume of Air Sampled (L)
60.6 X 293*6 X 10* - 11.92A
Weight Sample (ug)
'589*7* X I5l5y.-1.oug
Concentration
(ug/L)
1.0
TT792
0.08 - 0.1
Reference: GC/MS File #75*89.
Benzyl Chloride Method Validation
A series of experiments were performed to verify this procedure Is quantitative for benzyl chloride. The set of GC conditions are given at the end of this report; other experimental conditions are described separately.
Test I
The analytical column was connnected to the GC and an empty glass insert used. Then 1.5 1*A of the standard was injected and the program Initialized. Peak area of benzyl chloride was observed and recorded.
RSV 0010590
Teat II
Special Study
S-75-SS-I3 Page 2
This timer when the analytical column was connected, a packed Insert was placed In the Injection port. Note this was a freshly conditioned Insert and no air had been passed through It* Again 1.5 ut of the standard was Injected, the program Initialized, and peak area of benzyl chloride recorded.
Test IM
Next, 1.5
of the standard was Injected Into a 50 at gas sampling bulb.
A diagram of the apparatus Is given at the end of the report. A SKC-222-k51
pump was used in collecting the sample. A collection with flow 76 ml/m in
for one hour was made and the insert placed In the GC as In Test II and run.
Test IV
The last experiment was the same as Test III except a flow of 25 ml/m In for 5 hours was made. [A sens'!ing for k hours at 4 ml/mln was also conducted with a C-105 Insert and showed 952 recovery.]
RESULTS
from Test I and II, the results showed that the material absorbed on the Tenax Insert was desorbed fn the analysis. Similarly results from Test III and IV verified that the sample Is quantitatively collected from the air by the Insert whether It be a fast or slow flow rate. Accurate analyses should be obtained as long as the breakthrough volune for benzyl chloride Is not exceeded. See table for percent recovery In the experiments described.
GC Conditions
GC-7620 H.P. Flame Analytical Column: 2H glass Tenax GC Collection Column: Glass Tenax Insert Program: 50 (k min) - 250 9 15*/Hln. Attenuation: k X 10s X 1
Reference: GC File #75-95-
db
Monsanto Industrial Chemicals Applied Sciences St. Louis, Mo.
Co.
5/75 - L. H. Chapman, M. V. Dietrich
RSV 0010591
OP-1
Benzyl Chloride
<0.1
COP-1 <0.1
LT-I
<0.1
OP-2
<0.1
COP-2 <0.1
OP-3
<0.1
D-l <0.1
LD-I
0.1
OP-4
<0.05
COP-3 <0.05
Unknown <0.1 <0.05 <0.05 <0.05 <0.05 <0.1 <0.05 NO <0.05 <0.05
Toluene* 0.2 0.2 0.2 0.2 0.2 0.2 0.2 0.2 0.1 <0.1
TABLE
Concentration (lig/M
Chloro
Chloro-
benzene
Xylene*
to1uene
NO**
<0.1
0.1
NO
<0.05
<0.1
<0.05
<0.1
ND
<0.05 <0.05
ND
<0.05 <0.05 <0.1
<0.1 <0.1
0.1
NO
<0.05
<0.1
ND NO ND
ND
<0.05
ND
ND
<0.05
<0.05
Dichloro benzene
0.1 <0.1
<0.05 <0.1 <0.1
0.1 ND ND
<0.05 <0.05
Dlchlorotoluene
<0.1 <0.05 <0.05 <0.05 <0.05 <0.05 <0,05
ND
<0.05 <0.05
Naphtha lene
<0.05
Comments
<0.05
<0.05 ND
<0.05 ND
Sample partially lost due to leak
In system
<0.05 ND
ND
ND
*Toluene and xylene results are probably low because the breakthrough volume of these components was exceeded.
**ND Detection limit <0.0$
RSV 0 0 1 0 5 9 2
TABLE
Test I: Direct Injection on Analytical Column
Test II:
Injection on Collection Colum and Analytical
Column
Test III:
Collection g 76 ml/ min for 1 Hour on Tenax
Test IV:
Collection 25 ml/ min for 5 Hours on Tenax
Collection g 4 ml/ min for 4 min on C-105
Amount Injected of 1.56 ug/ui
Std.
I -5 ul
Amount Recovered
1001
1.5 Ul
951
1.5 ul 1.5 ul 1.5 u*
831 981 941
RSV 0010593
&I
3 i
RSV 0010594
Special Study S-75-SS-H
DETERMINATION OF TOLUENE DlISOCYANATE IN AIR (II)
_____
IN THE SUPER DOME________________
INTRODUCTION
This analyses was undertaken to determine concentrations of toluene dlIsocyanate (TDI) In air during Astroturf installation In the Super Dome at New Orleans.
SUMMARY
Samples from the Installation showed no TDI detected with a detection limit of 4 ppb. Methyl Ethyl Ketene (MEK) was observed at a level of >0*06 ppm. Con centration of other unidentified organics totaled around 0.02 ppm. A description of the samples Is given In the attached memo.
Two samples of the adhesive used In planting the Astroturf were also examined. The first, Vorite 677* an adhesive previously used In this application, showed only MEK and TDI In the headspace. The adhesive now used In Astroturf installa tion, Spencer Kellogg, contained besides MEK and TDI, a considerable amount of toluene and some xylene. Several other trace components not specifically identified appeared to be alkylated benzenes and aliphatic amines. A chromato gram is aetached.
In comparing the adhesives with the air samples, toluene does seem to be present In the air samples. The amount would be invalid because breakthrough would have occurred.
Reference: GC/MS File #75-93.
db
Monsanto Industrial Chemicals Co. Applled Sciences St. Louis, Missouri
5/75 - L. M. Chapman, M. W. Dietrich
RSV COLO*95
f*jh P f f r"^ n -A-..-!
6 / 6
#U*-"'k-~~ j-crv------ J, 4X/e*
AjyC*J> 30 a *-%. o
o.4
I
\ n_^
RSV 00L0596
Monsanto
ri .um iteTiMi
Carl D. Bohl - Medical Dept. - A2SA
` April 7, 1975
ec` J. T. Garrett
TO : Linda Chapnan - T2B
All samples were obtained with a flow rate of 2 1pm Indicated on the rotameter. Two pumps were used, and two orifices only. The sample orifice was always used with the same pump. You have one set for calibration. The other set Is presently at the Luling, Louisiana Plant and will be given to you for cali bration when it is returned.
The samples that were obtained were as follows:
Tube 98 was sampled using Pump #6 with orifice #56 from 8:30 a.m. to 9:12 a.m. during which time glue was being applied to the back of Astroturf with a 2" paint brush. This was being performed by Mr. Sandy Clark.
Tube #64 was obtained using Pump #6 and orifice #56 from the operator of the grass tractor starting at 10:57 a.m. and end ing at 11:19 a.m.
Tube #109 was obtained using Pump #2 and orifice #60. The sample was started at 10:32 and ended at 11:52. It is the exposure of the glue tractor driver. At 11:15 a.m. trouble developed with the glue pump, and for the last seven minutes the exposure was during repair of the pump.
Tube #57 was obtained using pump #6 with orifice #56. The sample was started at 3:13 and ended at 3:25> and represented the entire time that seam spraying was performed.
Tube 97 was obtained with the use of Pump #2 and #60 orifice. It was started at 8:13 a.m. and ended at 10:13 a.m. during the performance of hand seaming.
Tube 33 was used with Pump #6 and orifice #56 by the shield man during the spraying of glue. The sample was started at 12:25 p.m. and ended at 1:27 p<~
mlw
RSV 0010597
Spectroscopy Special Study 75*15
MODIFICATION OF A GAS CHROMATOGRAPH FOR EXTERNAL USE OF THE CARRIER GAS
SUMMARY -
This report describes the modification of a gas chromatograph which, makes the carrier gas conveniently available for use external to the chromatograph. For example, the helium carrier gas may be used to purge the organics from an externally mounted air sampling tube onto the head of an analytical column mounted in the CC oven.
DISCUSSION
Most gas chromatographs have a carrier gas ftttlng which Is connected to the Injection port through a flow controller valve and a molecular sieve trap. A three port valve can be placed In the carrier gas line between the molecular sieve trap and the Injection port and mounted on the top or the side of the chromatograph (see diagram attached). With a valve of this type Installed, the carrier gas can easily be switched to the external line. Since the valve Is after the flow controller, one can use the external helium line for chromatographic purposes. We typically connect this externa) carrier gas line to one end of an air sampling tube. The other end of the tube Is connected to the Injection port of the chromatograph at the septum nut. Using the three port valve the carrier gas can be switched to the external line and used to flush organics from the heated sampling tube onto the head of the analytical GC column, in this position the three port valve closes the normal carrier gas line to the Injection port. This keeps sample and carrier gass from leaving the Injection port through the normal carrier gas line.
We have found that a Whltey valve SS-A2XF2 works well for this modification. This valve has an intermediate position at which the input port is connected to neither exit port. This position can be used as a convenient shut-off for the carrier gas.
5S
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
7/75 - G. W. Nappes, L. M. Chapman, M. W. Dietrich
RSV 0010598
t X T t - ^ 'A u C AKXiER . 6 /iS,
DIAGRAM FOR S-75-SS-I5 RSV 0010599
Special Study S-75-SS-16
INTRODUCTION
NC-220 QUALITY
In a previous study of deposit formation In Pydraul fluids (MICC Applied Sciences Spectroscopy Special Study 74-14), amides were detected In many of the samples analyzed. These amide components could be caused by:
1. Reaction products of the l-methyl-2-pyrrolldone catalyst used in the manufacture of the Pydraul base stock phosphate ester.
2. Contamination by the customer.
3. Nitrogen fixation of the air trapped In the hydraulic system.
An In-depth study was made of a reserve production sample of NC-220, the Pydraul base stock, by earth filtration, IR (Infrared) analysis, NMR (nuclear magnetic resonance) analysis, XRF (X-ray fluorescence), and GPC (gel permeation chromatography) to determine If any of the amide components are inherent In the manufacturing process.
SUMMARY
IR, MIR and XRF analyses of materials isolated from new NC-220 showed:
1. Presence of a reaction product of an amide with the phosphate ester.
2. Pyrophosphate or polyphosphate esters.
3. An amide compound free of phosphorus which is not 1-methyl-2pyrrolldone or 2-pyrrolldone.
4. No epoxy stabilizer-phosphate ester reaction product (NC-220 should contain no epoxide stabilizer).
5. Presence of metallic entitles with calcium as the major and Iron, nickel and zinc as the minor elements detected.
Materials isolated from a filter deposit from a Pydraul 50E system at Chevrolet's Messina plant (TSR 74-123) contained mixtures of the epoxy phosphate ester and amide-phosphate ester reaction products. The probable structure of the epoxide reaction product Is Indicated In the discussion. The presence of the epoxide reaction product prevented establishing whether the amide reaction product was the same as that found In new NC-220.
Total nitrogen levels In five random reserve samples of NC-220 varied from 0.03 to 0.06S. Filtration through attapulgus earth reduced the nitrogen level in one sample by a factor of three.
RESULTS AND DISCUSSION
A plant batch of NC-220 flIC 225748-C) was percolated through an "earth" column without dilution. After elution of the fluid, the absorbed materials were recovered by washing the column with acetone and methanol.
RSV 0010600
S-75-SS-16
Page No. 2
A filter deposit front a Pydraul 50E Installation at Chevrolet's Messina plant was fractionated by solvent extraction with hexane, chloroform, acetone, oethanol and water.
IR analysis of the acetone and methanol fractions from the "earth" filtra tion after hexane washing to remove residual NC-200 Indicated high nitrogen contents, apparently a reaction product of an amide with a partially hydrolyzed phosphate ester. The reaction product contains both
0
N
-C-N- , P-0 and P*0 bonding.
IR analysis of the fractionated filter deposits showed the same types of products found previously In Pydraul SOE deposits namely the reaction product of the epoxy stabilizer with the partially hydrolyzed phosphate ester base stock, and metal salts of these Interaction products. The fraction Isolated by acetone extraction of the hexane and chloroform Insoluble portion of the deposit showed the presence of an Interaction product of an amide and the phosphate ester.
The acetone and the methanol eluted fractions from the earth filtration of the new NC-220 (MIC 225748-C) and the Isolated hexane and chloroform Insoluble/ acetone soluble fraction from TSR 74-123 were further separated by molecular size using GPC. The Isolated fractions were analyzed by IR and NMR.
The results tabulated In Tables I and II for the acetone and methanol eluted fractions from the earth filtration showed as expected no Indications for the presence of the sticky epoxy-phosphate ester reaction product associated with valve, filter or pump problems encountered using Pydraul E series fluids (see HICC Applied Sciences Spectroscopy Special Study 74-14). Two types of amide containing reaction products were observed In the acetone eluted fraction: about a 1:1 and about a 2:1 amide-phosphate ester reaction product. Since the catalyst 1-methyl-2-pyrrol 1 done is the only nitrogen containing entity used in the phosphate ester process, it must be assumed that the catalyst is the amide portion of the observed reaction products.
The methanol eluted fraction from the earth filtration showed the presence of polyphosphates or pyrophosphates. NMR and IR again indicated the presence of an amide reaction product. The f#4R spectra were very similar to that of N-methyl pyrrol1done Including the presence of a signal attributed to N-methyl. A low molecular weight amide was also found that may be the active component In the reaction product with the phosphate ester. The quan tities Isolated were too small for further characterization by other instrumental methods.
The GPC fractionation of the acetone soluble portion of the Chevrolet Messina plant filter deposit (TSR 74-123) showed the presence of mixtures of the epoxy stabilizer-phosphate ester reaction product seen In all the previous problems with Pydraul E series fluids. The NMR spectrum of this adduct looks very much like that of Admex 710 which is further reacted with a molecule containing no ArH and no other RH. A possible mechanism of formation could be reaction of an acid phosphate with Admex 710 followed by hydrolyses of the reaction product.
RSV 0010601
A jP
9" J
,
R C-C + HOP (0Ar)2 -- R C-C-OP (0Ar)2
(Atex 710)
e
F J)
9" J>
R C-C-OP (OAr)2 -- R-C-C-OP <0H)2
S-75-SS-16 Page No. 3
In addition, an amide-phosphate ester was present. Because of Interferences by the epoxy reaction product. It could not be established If the amide reaction product was the same as that found In the new fluid.
Total nitrogen analysis of the new NC-220 used In this study before and after earth filtration and of four reserve samples of NC-220 from June 1974 and October 1974 production were obtained by KJeldahl digestion and measurements with an anrnonlum Ion specific electrode. The results tabulated In Table IV show an almost constant level of nitrogen containing contaminants. About a 3-fold decrease in nitrogen level 1$ obtained by earth filtration.
XRF (X-ray fluorescence) analysis of SPC F #1 and F #2 of the methanol recovered fraction from the earth filtration Indicated partial metal salts were present in addition to esters of the pyro- and/or polyphosphates. The major metallic element present was calcium and the minor elements detected were Iron, nickel and zinc.
References: MR 16-1046, 16-455, 16-1047. IR 74-396, 74-511, 74-512.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, No.
6/75 - B. Katlafsky, W. J. Lltschgl, M. W. Dietrich
RSV 0010602
S-75-SS-16 Page No. 4
TABLE I GPC SEPARATION OF EARTH COLUMN ACETONE FRACTION
FRACTION NO.
- GPC VOLUME
CUT
APPARENT MOL. WT.
WEIGHT PERCENT
COWENTS
1
33.0-40.0 1170-730
17.8
1:1 reaction produce of amide with phosphate
ester - ester portion high In cumylphenyl
groups
2 40.0-44.3 730-420 16.1 Similar to F #1, amide content higher, contains cumyl and some nonyl contains N-CH3
3
44.3-47.8 420-255
22.4
Residual NC-220 containing about 10X
amide reaction product
4
47.8-51.7 255-150
40.8
Similar to F #3, ^20% amide reaction
product
5
51.7-53.6 150-118
1.6 ^*2:1 amide to ester reaction product
6 53.6-60.0 118-70 1.3 Similar to F #5, may Involve preferen tially the cumylphenyl component
RSV 0010603
TABLE II GPC SEPARATION OF EARTH COLUMN METHANOL FRACTION
S-75-SS-16 Page No. 5
FRACTION NO.
1
GPC
VOLUME CUT
APPARENT MOL. WT.
31.0-35.1 >3000
2 35.1-37.7 >3000990
3 37.7-43.9 990-420
4 43.9-47.3 420-270
5 47.3-53.1 270-130
6 53.1-58.1 130-66 7 58.1-60.0 <66
8 60.0-65.0 <66
WEIGHT PERCENT 41.6
22.4
10.6 5.5 9.0
5.1 3.1
2.7
COMMENTS
Pyro or polyphosphate ester containing a low level of amides - contains ArH and RH, may contain Iron
Same as F #1 - XRF analysis of combined F #1 and F #2 indicated the presence of calcium. Iron, nickel and zinc
Similar to F #1, amide content much higher
1 amide to orthophosphate ester reaction product
Same as F #4, contains cumyl unit, NMR similar to N-methyl pyrrolldone, contains N-methyl
Same as F #4
No phosphorus present. A primary and/or secondary amide which Is not 1-methyl 2-pyrrolldone or 2-pyrrolldone, 110 ArH, NMR similar to N-methyl pyrrolldone, contains N-methyl
Same as F #7
RSV 0010604
S-75-SS-16 Page No. 6
TABLE III SPC SEPARATION OF ACETONE FRACTION FROM PYORAUL 5QE DEPOSIT (TSR 74-123)
FRACTION NO.
1
GPC VOLUME
CUT
27.0-30.0
APPARENT MOL. NT.
>3000
2 30.0-35.0 >3000-1500
3 35.0-40.0 1500-730 4 40.0-43.9 730-430 5 43.9-45.3 430-360 6 45.3-47.5 360-270 7 47.5-55.0 270-70
WEIGHT PERCENT
COWENTS
7.7 Epoxy reaction product with phosphate ester - polymer Is low In aromatic components. Presence of nitrogen de tected qualitatively
46.8
Same as F #1, no aromatic H, contains fatty acid and ester, NMR looks very much like Admex 710 which has reacted with a molecule which contains no ArH and possibly no RH
16.8
%2:1 mixture of epoxy-phosphate and amidephosphate reaction products
12.9
*1:1 mixture of epoxy-phosphate and amidephosphate reaction products
5.2 Phosphate ester salts containing low level of amide
5.8 Similar to F #5
4.8 Similar to F #5
RSV 0010605
1
S-75-SS-16 Page No. 7
TABLE IV TOTAL NITROGEN CONTENT OF PRODUCTION NC-220
-SAMPLE NC-220 MIC 225748-C Neat
% NITROGEN
0.04 0.06
NC-220 MIC 225748-C After Earth Filtration
0.01 0.02
NC-220 Lot QD-33 5/29/74
0.03
NC-220 Lot QD-39 6/10/74
0.04 0.04
NC-220 MIC 255274 10/19/74
0.03 0.04
NC-220 MIC 255274 10/21/74
0.04 0.03
RSV 0010606
Special Study S-75-SS-17
CHLOROOIBENZO-p-DIOXINS IN PENTACHLOROPHENOL TREATED WITH MORPHOLINE_____________________
SUWARY
The Hewlett-Packard GC/MS system was used to Identify and measure non-
phenollcs In five different lots of pentachlorophenol. These samples of penta had been subjected to a morpholine treatment at the W. G. Krumnrlch plant. They were found to contain levels of pentachloro, hexachloro and heptachlorodlbenzodloxlns at least ten times higher than found In pentachlorophenol which has not been treated. This suggests that the morpholine treatment may convert dioxin precursors to dioxins.
DISCUSSION
Solutions of the non-phenolIcs In benzene were received from Steve Vogel, W. G.
Krunmrlch plant containing the non-phenollcs from 0.1 gram of each lot of
pentachlorophenol. Phenollcs had been removed by NaOH extraction. The measure
ment procedure Is the same as that described In Special Study AC-75-SS-3. The-
amounts of various dioxins are reported as ppm based on 0.1 gram sample weight
and are given below:
Concentration (ppm)
Sample
Unknown Chloro
Identification
Aromatlc
Penta CDD
Hexa CDD
Hepta CDD
212180-1 212180-7 211535 KM-261 256338
0.2
0.3 4 0.3
2
<0.1 120 2100 <0.1 110 1800 0.4 73 1400 0.4 50 1500
1.5 180 1600
No dlchloro or trlchlorodlbenzodloxlns were observed with a detection limit of
0.1 ppm. The unknown chloro aromatic has a significantly different GC retention time and mass spectrum from 2,3,7,8-tetrachlorodlbenzodloxln. However, Its spectrum does contain 322 and 259 Ions which would be expected of any tetrachlorodlbenzodloxln. The full mass spectrum, however, contains Ions which should not come from a dioxin. Because this spectrum Is very weak, the possibility that this component Is a tetrachlorodlbenzodloxln (but not the 2,3,7,8 Isomer) cannot be ruled out.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
6/75 - G. U. Mappes, M. W. Dietrich
RSV 0010607
Special Study S-75-SS-18
JUNE 1975 MERCURY INVENTORY, V. O. KRUHMRICH PLANT, CHLOR-ALKALI DEPARTMENT
INTRODUCTION AND SUMMARY
The mercury Inventory made at V. 6. Krumnrich plant has been completed. The sum of the average weights for the 22 cells was 251,135 pounds 5697 (2 sigma limits). This Is 5166 pounds less then the Inventory of October 1976.
Cell house mixing was followed on cells 1, 7, 16, 15 and 22; all cells were completely mixed after 26 hours. Inventory by Individual cells Is tabulated In Table I attached.
The 2 sigma confidence estimate of 5697 pounds of mercury (2.273 of total inventory) was double that of most previous Inventories primarily due to abnormally low sample radioactivity. An Investigation showed that the Initial radioactivity In the Mercury-203 shipment was about 1/3 that of previous shipments. Also plant delays of about 20 days of targeted spike date further diminished the 66.7 day halfllfe radioactivity by an additional 253. Subsequent discussions with plant personnel indicated that they did not feel that to recount the samples at longer count Intervals (50 min. per sample vs the normal 20 min.) was justified.
REFERENCES
Research Notebook MIC 264367A-2643832B.
db
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, No.
6/75 - H. Yepez, D. B. Hines, M. V. Dietrich
RSV 0010608
A
MERCURY INVENTORY
TABLE I MERCURY INVENTORY W.G.K. PLANT JUNE 1975
CELL NO*
average mercury
INVENTORY (LBS)
STANDARD DEVIATION (LBS)
TWO SIGMA - PERCENT OF TOTAL (LBS)
1 2 3 4 3 6 7 6 9 10
11 12* 13
14* 15 16 17
ia 19 20*
21 22
10266.35 11009.21 11699.56 11306.52 10899.75 11259.05 12076.07 10275.38 11578.00 11272.66
12087.04 9218.55
12524.33 11C09.25 13486.73 11309.94 11216.91 10359.34 119RA.21 10623.32 14134.02 11353.4b
146.90 146.41
97.44 126.39 117.58
67.12
104.51 99.49
118.01 90.51
161.C6 108.00 215.46
96.35
218.29 126.39 .106.45
56.20 97.76 145.47 251.97 158.93
293.81 292.92 174.88 252.76 235.15 134.25 209.02 196.98 236.02 161.02 322.13 216.01 430.91 192.71 436.58 252.78 212.91 116.41 195.52 290.95
503.94 317.66
2.862 2.660 1.471 2.296 2.159 1.192 1.731 1.937 2.039 1.606 2.665 2.343 3.441 1.750 3.237 2.235 1*896
1*124 1.631 2.739
3.565 2.800
.
JO
to <
THE SUM OF THE AVERAGE WEIGHTS IS 251135.86 LBS.
o
o
..- THE SUM OF ALL TWO-SIGMA IS 5697*41 LBS
o
O'
o fi
THE PERCENT THE SUM OF ALL TWO-SIGMAS IS OF THE TOTAL INVENTORY WEIGHT =
2.269 PERCENT
CELLS 12,
and 20 HAD 836 I VIRGIN MERCURY ADDED AFTER CELLS WERE SPIKED. THE INVENTORIES GIVEN ABOVE
WERE BASED ON SAMPLES FROM THE 3 CELLS TAKEN BEFORE THE MERCURY WAS ADDED,
Spectroscopy I Specie) Study 75"19
DETERMINATION OF MALEIC ANHYDRIDE AND VINYL ACETATE IN AIR; PORT PLASTICS
INTRODUCTION
Analyses were performed to determine levels of Maleic Anhydride (HA) and Vinyl Acetate (VA) in air during a maleic anhydride resin process at Port Plastics, Addyston, Ohio. Workers In this area wear inhalation aspirators. The results given are not exposure levels but are the levels workers would
be exposed to if they did not have protective equipment.
SUMMARY
Levels of MA and VA found are given In the attached table.
EXPERIMENTAL
A glass Tenas GC insert was used for collection and analyses. Calculations and identifications based on known standards, GC retention time and GC/MS verification.
Volume of Air Sampled (Liters)
Calculations Supplied by Steve Roberts
Weight Sample
(Mg)
Concentration Sample (pg/L)
m Area Sample Peak Cone. Std. (pg/uL) Vol. Injected (uL)
(counts)
x
Area of Standard (counts! ~
Weight Sample (ug)/VoIume of Air Sampled (Liters)
Concentration Sample (ppm)
- W9/L (sample) x -- *
For SampIIng 001
ii
Volume of Air Sampled
- 2.3 liters
Weight Sample
(ug)
- 16069 x HiTTF1'7`2 *
Concentration
(ug/L)
VA
-
3.1 pg/L
"ssrConcentration (ppm)
VA
-
3.1 x
. 0.9 ppm
Reference GC/MS File #75-112
ss
Monsanto Industrial Chemicals Co. Applied Sciences
i St. Louis, Mo.
6/75 - L. M. Chapman, M. W. Dietrich
RSV 00106X0
Sample OOI 002 003
CONCENTRATION (PPH)
HA NO (_ .2 ppm)
VA 0.9 ppm
ND (<6.6 ppm)
1.8 ppm
<0.3 ppm
1.1 ppm
Comments
2.3 1 sampled
0.75 1 sampled
MA wasn't positively identified because of inter* ferences: 2.4 1 sampled
RSV 001061L
Spectroscopy Special Study 75*20
DETERMINATION OF CHLOROPRENE IN AIK AT POUT PLASTICS PLANT, ADDYSTOM. OHIO
INTRODUCTION
The purpose of this Investigation was to determine worker exposure in the handling of chloroprene.
SUMMARY
Two samples were analyzed for chloroprene. One sample taken during a leak In the operation gave a concentration of 1.2 ppm In the air while the other sample had a concentration of 0.8 ppm. Both are well below the TLV.
EXPERIMENTAL
A C-105 insert was used for collection and a 38 OVI glass analytical column was used for the analysis. A description of the calculations Is given below. Identification was by GC retention time of known standards.
Calculations
Volume of Air Sampled (Liters) Supplied by Steve Roberts
Weight Sample (ug)
Concentration Sample (ug/L)
Area Sample Peak (counts)
Cone. Skd. (wg/uL) Vol. Injected (uL) Area of Standard (counts)
Weight Sample (yg)/Volume of Air Sampled (Liters)
Concentration Sample (ppm)
For Sampling 75*19
Volume of Air Sampled
- 9.3 liters
Weight Sample (ug)
' 5292 X 25j,fl74:- - **0*7 Ug
Reference: GC/MS File #75*111
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
6/75 * L. M. Chapman, M. W. Dietrich
RSV 0010612
Spectroscopy Special Study 75-21
DETERMINATION OF VOLATILES IN DECATUR, ALABAMA PLANT AIR (IV)
INTRODUCTION This Is a continuation of an Investigation to determine levels of vinyl acetate (VA), acrylonitrile (AN), vinyl bromide (Vfir). vlnlyidene chloride (VnClj)# DMAC and OMF In air at the north continuous polymer area of the Decatur, Alabama plant. The data obtained will be used to identify areas where worker safety problems may exist.
SUMMARY Results of two sample sets are found In Table I and Table II. GC retention time provided the means of Identification of the volatiles. Acrylonitrile had values of from 0.2 to 2.0 ppm, vinyl acetate values ranged from 0.1 to 11.4 ppm, VBr ranged from 0.1 to 1.6 ppm and vinllldene chloride ranged from 1.2 to 4.0 ppm. Values for DHAC and DMF are uncertain because the columns used for collection have not been fully investigated for these components.
EXPERIMENTAL Refer to Spectroscopy Method 74-7 for the analyses procedure used. Twelve minutes were allowed for the heating of the external collection column to collect the acrylonitrile before proceeding as in Method 74-7- An example of the procedure used to calculate concentration is given In the S-75-SS-! report. Sample collection was made using a Model 222-451 SKC pump. Calcu lations were based on known standards. Reference: GC/MS File #75-114
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho. 6/75 - L. M. CCapman, M. V. Dietrich
RSV 0010613
TABLE I CONCENTRATION (PPM)
VBr AN
VA
M-3 1.0 PPM 2.0 PPM 0.4 PPM
M-4 1.6 2.0 0.3
H-5 0. 1
1.2 0.2
L-4 0.8 0. 1 ND
Samples from 5*19-75
Volume sampled ft# 2 liters Flow rate ^ 17 m/min Sampling time 4*2 hours
RSV 0010614
TABLE II CONCENTRATIONS (PPM)
L-12 L-7 L-ll L-10 L-1 L-3
VBr VnC12 VA AN
0.4
1.6
< 0.1*
NO
NO
1.2
< 0.1*
0.2*
NO NO
1.0 NO
0.4*
4.0
<11.4*
NO
------- Lost In analysis
------- Lost in analysis
OMF** 2.7 NO 2.0 NO
DKAC** NO
<. 1.1* NO
< 1.7*
* Due to interference from other components these are maximum values
** Values for OMF and DMAC are questionable because the columns used for the collection have not been fully investigated for these compounds.
Samples from 6-9-75
Volumes sampled^ 2 liters Flow rate m* 16 m/mtn Sampling time a# 2 hours
RS V 0010615
Spectroscopy Special Study 75-22 DETERMINATION OF CONTAMINANTS IN DIMETHYL SULFIDE
INTRODUCTION Dimethyl sulfide Is a component In an artificial tomato flavor to be sold to General Foods. The purpose of this study was to identify Impurities In certain lots of dimethyl sulfide which cause the product to be nonacceptable to General Foods. SUMMARY Impurities Identified are given In the attached table. The major difference between the acceptable and non-acceptable products was the presence of CjHgS and C^HjqS components In the non-acceptable product. These components may explain the differences observed by General Foods. EXPERIMENTAL A Chromosorb 105 analytical column was used for the analyses. Calculations are based on a dimethyl sulfide standard. GC/MS provided the identification of components. Reference: GC/MS file #75-116
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louts, Mo. 7/75 L. M. Chapman, M. W. Dietrich
RSV 0010616
Table for S-75-SS-22
CONCENTRATION (9/1)
DHS Propane* W CjH8* c3h8s C4HI0S Hisc**
Phillips (better than acceptable)
997
1.0
2.3 NO
ND
HD < 0.1
Aldrich 12 (acceptable)
996 1.4
2.8 ND
ND
ND < 0.1
Penwa1t (not acceptable)
975 1.2
2.4 3.1
1.0
16.7
< 0.2
PenwaIt Ex Drum (not acceptable)
989 1.8
2.5 0.7 0.3
4.8 0.2
* Tentative Identification only ** The sum of other small contaminants not specifically Identified
RSV 0 0 1 0 6 1 7
S-75-SS-22
UttVAi dL^Ltft^. -* *200 c
3 00t
|OA^4^-vv
cro-src^S'*/
djuU^tcrv *<L
oJU jkzLx
e-/r
*
I RSV 0010618
RSV 0010620
r
S-75-S5-22
ii P
tj.
I
P
1
Spectroscopy Special Study 75*23
VOLATILE ORGANICS EVOLVED DURING THERMOGRAV(METRIC ANALYSIS OF FLAME AND SMOKE RETARDING PVC FORMULATIONS
_____
SUMMARY
Volatile organics from PVC decomposition between 250 and 350*C were identi fied and quantified. Fifteen components were identified. The total organics observed accounted for from 0.5 to 3 percent of the sample weight. Under these conditions, the TGA indicated from 5 to 60 percent weight loss. The material not measured is presumed to be principally HCI and high boiling organics.
OISCUSSIOM
The twelve PVC sheets submitted for thermogravimetric analysis. Physical Chemistry Special Study 74*48, were decomposed in the TGS-1 thermobalance using sample weights of 10 to 1$ milligrams. The temperature program rate was lOVmin. with an air purge gas flawing at 10 mi/min.
The air and organics exiting from the TGS-1 were sampled by a loop of 1/8. inch 0.0 stainless tubing having a volume of 10 mi. After sampling, the loop was transferred to a gas chromatograph where the gas sample was trapped on the head of a Tenax GC column at ~40*C. The Tenax GC column was temperature programmed from -40 to 250*C. The organics which eluted were identified by a combination of GC/MS and GC retention time.
The data from these analyses are presented In two forms. One Is a graph showing both the TGA weight loss and the total organics for each gas sampling as a percent of sample weight. The other is e table for each sample showing component identification and concentration of that component as a percentage of all the organics measured from that sample. The tempera tures are not the same for each table because the gas samples were taken at corresponding points of weight loss on the TGA curve rather than at corresponding temperatures.
The sample loops were attached to the TGA apparatus when the apparatus reached the temperature indicated in the table and were left connected during the next 10 degree temperature increase, i.e. for one minute. This means that the concentratIons given in the table reflect an average compo sition over the period of this 10 degree increase.
GC/MS identifications were done on the basis of three sample loops. The peaks In the remaining 69 GC separations were identified by retention time relative to the GC/MS data. This is a good method of identification for all of the components except Cg olefin, alkyl chloride and Cjo olefin which are Incompletely resolved. If the Identity of one of these components becomes critical for a given point on the TGA curve of a particular sample, we will have to check that sample by GC/MS.
RSV 0010622
c
S-75-SS-23 Page Ho. 2 Sow of the very smell peeks ere not Included In the table so that addition of all the entries In each table will not quite equal 1002. ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 7/75 * 6. V. Mappes, C. Calvert, M. W. Dietrich
RSV 0010623
W U fiG t W 9-JL
t'b ik
s fiM P it: w -
SMV9*9 JNJOXJd
V
s n m 'rt: w - f
?.< 3
S fiv n e : 979-
rye
( l'J t .1 /
S m M t 999-6
S /M M 3H -S
-n
%
i
i 3 U -4
S *W IB : 266-
r
SS01
S A H P iZi. 3 U -2 ,
s n n rte 366-
Sample 366*1
Percent of Volatile Organics Oetected
Temperature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
270
.06
--
.09 -- .11
.20 --
oo
285 .08
. -- .12 -- .04 .63
300 .44 . 16
.44 .23 --
.61 6.88
315 .89 .47
.20 .74 --
.32 21.69
330 31*5
.67 2.25
.29 .25
.73 .56 .12 .17 1.75 --
.69 47.10 Nl .06
Temperature
270 285 300 315 330 3*5
Cj olefin
.53 .42 1.71
--
1.42 __
Toluene
__ .006 .097 .26 1.04 __
Cg olefin
.06 .16 .50 .81 1 .72 .17
An alkyl chloride
---- -1.19 --
C^q olefin
.26 ---
--
.24 --
Total organics measure.:: at each temperatui
1.31
1.465
11.067
25-38
55.77
4.65
RSV 0010636
S-75-SS-23
Sample 366-2
Percent of Volatile Organics Detected
Temperature Propene Methyl chloride pw oase Butene Pentene Pentane Benzene
250 --
.32 -- -- -- .13 1.18
265 --
.15
.13 .09 --
.31 A.71
260 .03
.09
.06 -- --
.44 6.13
295 .14
.18
.02 .09 --
.07 5.29
310 .06
.07
.09 .08 --
.17 15.71
322 .08
.06
.05 .06 --
.05 16.13
Temperature
C7 olefin
Toluene
C9 olefin
An alkyl chloride
C10 olefin
Total organics measured at each temperatun
250 -17 -83 .19
--
-- 2.82
265
--
6.33
--
--
-- 11.72
280
--
9.53
12.92
295 --
1.49
1.94
310
35
1.7
6.12
322
--
1.55
3.11
-- -- '--
--
-- 29.20 -- 9.22 -- 24.35 -- 21.09
!I
i
RSV 0010637
S-75-SS-23
i
Sample 366-3
Percent of Volatile Organics Detected
Temperature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
260 --
.21 -- -- .08 .06 .20
275 .18
.21
-- ' -- .90
.65 6-74
288 .78 -29 .61 .83 .75 1.52 23.26
300 .15
.05
.08 .08 --
.16 7-32
312 .33 .10 .19 .14 .06 .29 12.28
325 1.47
-38
.82
.70
--
.09 .60
Temperature C7 olefin Toluene Cg olefin An alkyl chloride C IQ olefin Total organics measured at each temperatur
260 275 288 300 312 325
-- --
.07
.94 .05 1.84
12.19 .81 1-91
5.17
.02
.02
9-52 .17 3.01
--
__
__
-- -- .62
.28 -- 11.79
-- -- ^*2.95
--
.--
13-05
.44 -- 26.53
0 -- 4.06
RSV 0010638
S-75-SS-23
Sample 366 -4
Percent of Volatile Organics Detected
Temperature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
252 --
.46
.10 -- .02 .05 .58
265 --
.15
.15 -- .08 -07 1.16
280 --
-47
.28 -- -45 .45 6.60
293 . 11
.03
-- -- -- -- --
305 .14 316 .06
.08 .02
.18 .22 .15 38 10.33 -- .22 -- -- --
Temperature
Cj olefin
Toluene
Cg olefin
An alkyl chloride
Cjq olefin
Total organics measured at each temperatu;
252 N1 265 .48 280 2.12 293 -- 305 3.91 316
.76 1.73 8.93 -- 6.14 __
1.22 3.41 14.94 Nl 11.36
__
.28 2.26 6.51
--
8.47
--
-- .26 1.45
--
1.40
3-47 9.75 42.20
.14 42.76
-30
RSV 0010639
S-75-SS-23
Sample 366*5
Percent of Volatile Org an \ cs Detected
Temperature Propane Methyl chloride Propene Butene Pentene Pentane Benzene
250 --
31
-- -- --
. 12 .57
262 --
.03
-- .04 ~
.08 2.20
275 .02
.04
--
.11 .10
.36 4.08
290 .02
.02
.001
.02 --
.14 2.00
302 .04
.05
.06
.06 .04
.07 9.22
306 .06
.09 .05 .06
.09 14.00
Temperature
C-j olefin
Toluene
Cg olefin
An alkyl chloride
Cjq olefin
Total organic measured at each temperat
250 .24
262 -35
275
--
290 .55
302 1.23
306
--
.91 2.04 4.40 1.86
.67 .12
1-95 8.81 11.52 2.30 4.38
.10
1.17 -- --
3.71 --
--
1.35 ^-99 1 .02 3.02 2.21 6.15
6.62 18.54 21.65 13.641 18.03 20.72
RSV 0010640
Sample 366*6
Percent of Volatile Organics Detected
Temperature Propane Methyl chloride Propene Butene Pentene Pentane Benzene
250
.14 -- --
8.18
2.05
262 03 .13 -- --
12.60
5.20
275 .02 .08 -- --
11.77
5.39
287 .05 .08 -- --
7-82
8.27
300 09 .06 -- --
3.84
13. n
Temperature
Cy olefin
Toluene
Cg olefin
An alkyl chloride
C|Q olefin
Total organics measured at each temperatL
250
07
.004
.05
262 .37 .04 --
275 -59 .21 --
287 .71 .17 .10
300
83 .21
15
.04 .65 11.184 .005 .21 18.585 .16 .87 19.09 .19 .04 17.43 -- -- 18.29
RSV 0010641
S-75-SS-23
Sample 989*1
Percent of Volatile Organics Detected
Temoerature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
270 .05
.27
-13 .17 --
.80 .66
283 .29
.60
.55
.82
.16
1.62
8.12
295 .21
--
.10 -19 --
.86 13-30
308 .22
.07
.67 .20 --
-97 21.62
320 .37 .37 .20 .16 .16 .86 25.95
Temperature
C7 olefin
Toluene
Cg olefin
An alkyl chloride
Cjo olefin
Total organi measured at each tempera
270
.86 .06
.76
.56
.62 6.76
283
2.75
--
2.88
295 -- .17 1.20
308 -- .19 1.75
320 .67 -36 1.02
1.66 .06
1.36 -91
-- 19.03 -- 16.09 .98 27.63 .16 31.13
RSV 0010662
Sample 989-2
Percent of Volatile Organics Detected
Temperature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
260 -- 274 --
1.22 --
.17 -- --
--
.29 -- .18 .52 7.69
287 --
--
.57 --
.56 16.22
300 .42 .12 -50 .12
.82 18.84
313 45 .07 .10 .29
.31 18.76
325 .95 .09 .25 54 .09 .79 17-98
Temperature
C7 olefin
Toluene
C9 olefin
An alkyl chlor ide
Cjo olefin
Total organics measured at each temperatu
260
.70 --
Nl
274
1.89
--
1.21
287
.20 --
--
300 --
1.10
313 -- .13 -69
325 -- .16 -51
.13 1.04
-.15 .17 .03
.15 2.37 -- 12.82 -- 17.55 -- 22.07 -- 20.97 -- 21.39
RSV 0010643
I
S-75-S5-23
Sample 989-3
Percent of Volatile Organics Detected
Temperature 270
Propene --
Methyl chloride 2.34
Propane 1.05
Butene --
Pentene Nf
Pentane 1.27
Benzene 4.02
284 .21
.72
1.40 .08 .20
1.75
8.31
297 .24
.34
1.12 .48 .16
1-71
10.61
309 .50
.14
.93 51 .18
.66 15.49
322 71
.14
1.16 .52 .13
.95 8.58
334 1.29
.11
.62 .68 --
.92 11.10
Temperature
270 284 297 309 322 334
olefin
Toluene
Cg olefin
An alkyl chloride
C 10 olefin
Total organics measured at each temperatu
2.48
11.16
-- HI
1.56
.10
-- 14.33
1.63 --
.27 --
.73 --
.11 --
-- 17.40 -- 18.41
2.11
.29 2.56
--
-- 17.15
2.16
__
.009
--
16.889
RSV 0010644
Sample 989*4
Percent of Volatile Organics Detected
Temperature Propene Hethvl chloride Propane Butene Pentene Pentane Benzene
250
--
2.13
.52 -- --
.69 3.45
264 --
.38 .53 -- .18 -- 13-91
281 --
--
.50 -- .21
50 18.58
295 --
.04 .10 -- .07 .13 10.45
308
--
--
.08 -- --
-- 23-13
323 .04
--
-- -- -- -- 21.88
Temperature
Cy olefin
Toluene
Cg olefin
An alkyl chloride
C jq olefin
Total organics measured at each temperatu
250 264 281 295 308 323
-- --
--
--
---
--
--
--
--
--
--
-- -- --
.54
--
--
--
6.79
-- -- 15-00
-- -- 19-79
-- -- 10.79
-- -- 23-21
--
1.45
22.46
RSV 0010645
Sample 989*5
Percent of Volatile Organics Detected
Temperature Propane Kathy1 chloride Propane Butene Pentene Pentane Benzene
280 -- 294 --
.37 39 .11 .48 .40 9.62 .18 .20 .32 .28 .18 tit.95
306 .10 .16 .14 .31 .12 .21 13.52
318 .19 .14 .10 .49 .12 .11 14.71
330 .25 .16 .23 .38 .06 13 15-40
344 .29 .12 -- .20
.04 15-69
Temperature C7 olefin Toluene
280 -- 1-87 294 -- 1.09 306 -- 1.91 318 -- .93 330 -- .74 344
olefin
An alkyl chi oride
C ^0 olefin
Total organ measured at each temper^
-- -- .15 13.39 -- -- -- 17.20 -- -- -- 16.47 -- -- -- 16.79 -- -- -- 17.35 -- -- -- 16.34
RSV 0010646
Sample 986*6
Percent of Volatile Organics Oetected
Temperature Propene Methyl chloride Propane Butene Pentene Pentane Benzene
253 --
-07
.52 --
8.99
2.19
267 .02
-07
.03 1-37 --
15.12
3.74
280 -07
-09
.05 3.49 --
13.22
4.59
293 .07
.10
.03 1.96 --
10.02
5.53"
306 .21
.10
4.16
--
.55 6.92
Temperature
C7 olefin
ToIuene
Cq olefin
An alkyl chloride
C10 olefin
Total organic: measured at each temperati
253
.06 --
--
267 90 .03 .04 280 1.00 .01 --
293 1.21 .12 .58
306
1.03
--
--
--
-55 -- 3-22 .10
-- n .83 -05 21.92 -- 22.52 -- 22.84 -- 13.07
RSV 001064?
Spectroscopy Special Study 75-24
VOLATILES FROM ABS AND STYREHC POLYMERS AT PROCESS I MG TEMPERATURES
SUMMARY-
Two samples of aerylontrlle/butadlene/styrene polymer (ABS) and one sample of high impact polystyrene were heated fn air at 2Q0C and 260*C to simulate processing conditions. Volatiles given off by these polymers ranged in concentration from ten to several hundred ppm of the sample weight and were identified by GC/MS.
DISCUSSION
A ten to twenty milligram piece of each polymer was placed in a smalt porce lain boat and heated to the desired temperature. This was done in a quartz tube connected to the injection port of the Hewlett Packard GC/HS system. Air flowing at 15 m/mln. passed over the boat and carried volatile materials onto the head of the GC/column (2-51 OV 17) which was held at -40C. After heating for the desired time* the sample was removed from the quartz tube* and helium carrier gas was used to sweep any volatiles remaining In the tube onto the head of the GC column. The GC column was then temperature programmed from -40C to 250C and the eluting components analyzed by mass spectrometry.
Each sample was heated for one minute and for 15 minutes at each temperature, 200C and 260C. In order to keep the sampling times the same for all samples, the 15 minute heating was done in a forced air oven. The sample was then transferred rapidly to the quartz tube where It was heated for one minute at the same temperature and sampled for volatiles. The one minute samples were heated for one minute at the desired temperature and sampled for volatiles during the heating period.
The attached table shows the volatiles found from each sample at each of the four experimental conditions. Component G may be a substituted indene; component A probabty has a molecular weight of 73 but could not be identified by its mess spectrum. The components In the table account for 902 or more of the components observed by GC/MS (except for the samples heated to 260C for one minute and the LNIFC 500 15 min. f 260 sample). These samples have components with molecular weights higher than 200 that amount to 10-302 of the components measured by GC/MS for each of these samples. They could not be Identified by their mass spectra. However, the data indicate that some are probably styrene dimers.
RSV 0010648
/ *
S-75-SS-2*
Page No. 2
The mount of volatiles Measured tn this type of experiment may depend on the surface area exposed to the heated air. AH of the samples analyzed had approximately the same surface area since they were the same size and shape. -A very finely divided sample may give higher values than those reported here. Acidic components such es HCN, HC1 end HSr would not have been measured by this method.
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 7/75 G. W. Mappes, M. V. Dietrich
RSV 0010649
TABLE FOR S-75-SS-24
VOLATILES FROM A8S AND HIPS POLYMERS PPH BASCO ON WEIGHT Of SAMPLE ANALYZED
SAMPLE LNIFC 500
AeryIon1trlIn Ethylbenzene Styrene C^alkylbenzene Terplnolene Dibutyl cresol
1 nln g 200C
7k
80 210 43
97
50
15 nln 0 200*C
B
11 72 5
25
40
1 nln R 260C
160
160 230 52
120
120
15 nln 0 260C
12
19 8k 10
50
130
LNI 440
Acrylonitrile Ethylbenzene Styrene C^alkylbenzene Terplnolene Dibutyl cresol
1 nln % 200C
230
130 230 38
100
110
15 nln g 200C
20
13 63 6
23
22
I nln 0 260C
260
170 140 41
89
130
15 nln % 260C
11
23 76 10
50
86
G 15
3 92 26
LUSTREX 6400 1 min 8 200C
15 nln 200C 1 nln 260C
15 min 260C
A 16
5 3* 18
Ethylbenzene Styrene C^alkylbenzene Terplnolene Dibutyl cresol Styrene diners Tlnuvln-P
210 150 35
<10
55
54 46
15 49 4 <10
15
95
320 400 57
100
100
120 76
10 33 2 11
18
79
RSV 0 0 1 0 6 5 0
Spectroscopy Special Study 75*25
DETERHIMATI ON OF BIS (2-CHLOROETHVL) ETHER IN PHOSCARDS
INTRODUCTION
The presence of bis (2-chloroethy1) ether (8CEE) may pose a threat to the product acceptability of our Phosgards. Both EPA and NIOSH (administrators of OSHA) have expressed concern over the toxicity and possibly carcino genicity of BCEE. This study was undertaken to determine if any of our Phosgard products contain BCEE and if so to determine the levels.
SUMMARY
A headspace GC method has been developed for determining BCEE in Phosgards and In ethylene dichiorlde. Data from several product and process samples are given in the attached Table I. As is indicated, BCEE was found in several samples. Values of <.005% are questionable because of possible equipment contamination. The significance of these levels of BCEE in our products is unknown.
DETAILS
A. Identification of BCEE
The presence of BCEE was confirmed by GC/MS techniques using headspace samplings from several products. These Identifications were carried out under modified GC conditions to minimize chances of thermal decom position of other components in the products. The headspace sample was collected from Phosgards at room temperature (this will leave behind high boiling materials). The collected sample was placed in a warm only (100*C) Injection port. GC analyses conditions were chosen so that BCEE eluted below 110 C(see Figure 1). Under these conditions, it is very unlikely that interfering components which liberate BCEE could be present. The mass spectra* from GC/MS, and the GC retention time obtained in this way were identical to known BCEE.
B. Alternative Analyses Procedure
Liquid Chromatography (LC) and direct GC analyses were also studied. LC appeared promising but did not have sufficient sensitivity. Detec tion limits using the refractive index dectector were only ca 0.1%. BCEE does not have sufficient UV response to allow the use of this detector. Direct GC analyses was found to give erroneously high results on some samples. This Is presumed to be due to a Phosgard component decomposing on the hot injection port of the GC and forming BCEE. Table II compares data obtained by Headspace GC to that obtained by LC and GC.
C. Sample Collection *
The sample collection apparatus consists of a 125 ml suction flask fitted with a dip tube, stopper, and a two-inch Teflon covered magnetic stir bar. The stopper Is a #12 cork bored to snugly fit a 5 nrt o.d. tube and with the surfaces exposed to the sample covered with Teflon
RSV 0010651
Spectroscopy Special Study 75-25 Page Two
C. Sangle Collection (cont'd)
tape. A 130 mm length of 5 m* o.d. glass tube was Inserted through the Teflon tape until It would clear the flask bottom by ca 20 ran, thus exposing ca 20 mm above the cork. The flask side arm carried a short tube charged with activated charcoal granules. A 15 psi house N2 line was led to the charcoal trap, passed over the stirred sample, through the dip tube and via a short Teflon connection Into a collection tube. An Ideal refrigeration valve after the regulator throttled the N2 flow. N2 flow was measured by a Buble-O-HIter as It left the collector and was adjusted for 100 mi/25 seconds.
The collection tube Is a six-inch length of l/k-inch standard stainless steel tubing fitted with two Swazelok nuts back-to-back on one end, the long part measured to fit as an Insert Into the injection port. It is charged with 150 mg Tenax 60/80 retained centrally by plugs of sllanized glass tagol. The inserts are conditional at 200*C and cooled before use.
0. Calibration
A standard was prepared that contained 80.5 micrograms of bis-chloroethyl ether per microliter of methylene chloride. A one microllter injection of this standard, with needle correction provided 90.1 micrograms of BCEE. To calibrate the vapor collection, an equilibrium process, a degassed Phosgard 1227 was used. Oegassing was done by passing air at room temperature over a shallow stirred pool of Phosgard for three weeks. Ten mi of this BCEE-free Phosgard 1227 was charged into the flask and a collection made to establish the "zero" level. Then ten mtcroliters of the standard and later an additional 90 ralcrollters to give collections representing 10 and 100 micro!!ters or 80 and 800 ppm in the liquid. The GC results, versus the injected standard. Indicated 0.98 and 6.9 micrograms in air respectively. A calibration curve of micrograms in air versus ppm in liquid from these data was used to determine the ppm of BCEE in the Phosgards analyzed. As a first approximation, BCEE-free Phosgard 1227 was used to calibrate for all the Phosgards analyzed.
An all-glass 10 mt syringe equipped with a 3 ran i*d. by 5-inch length of Teflon tube Is used to transfer 10 mJt of the Phosgard sample to the flask. Without the collection tube the dip tube/cork assembly is set in place and with moderate stirring the sample is equilibrated with N2 flow for ten minutes. Then the collection tube is attached for about eight minutes to collect the components swept out of the flask by two liters of N2 flow.
*GC analyses Indicated this Phosgard was essentially free of BCEE and other low-boiling Impurities.
RSV 0010652
Spectroscopy Specie! Study 75*2$ Page Three Analyses A Hewlett Packard 7620A gas chromatograph capable of sub-ambient opera* tion via liquid nitrogen cooling was used. The analytical column used Is a 1/8-inch by 2 meter 102 S-409 on 60/100 Chrom WHP. With the helium flow off and the injection port at 200*C, the collection tube Is first attached to the head of the analytical column. The collection tube is then inserted into Injection port, secured, and the liquid nitrogen cooling turned on the achieve -30*C. The Autolab Is set at peak width five, slope sensitivity 30 and attenuation one. When ready the helium flow, Autolab and program are Initiated. The temperature program used wes -30*C to !50*C at 20*C per minute, followed by a purge at 180*C for five to ten minutes. GC attenuation is typically 1 X 1000. Quantita tive data were obtained using an Autolab System IV and standatd GC techniques. A typical chromatogram Is attached as Figure 2. ss Honsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho. 7/75 - 0. E. Klnast, H. W. Dietrich
RSV 0010653
n *
RSV 0010654
RSV 0010655
V
i i<
RSV 0010656
A Lt B fiA rto *
S-75-SS-25
RSV 0 0 1 0 6 5 7
SAMPLE
P 1227 Lot 1053 P 1227 Lot 1050 P 1227 Lot 1054 P C22R, Q0 7250 DOW E0C
EDC: Neutralized Ba 7323, P C22R Byproduct EDC: Un-neutral Ized, Ba 7446 P 1227 Run 3, Cut 1 P 1227 Run 6, Cut 1
TABLE I
Identification confirmed by GC/HS. Very high level residual chlorobenzenes.
X BCEE (HEAOSPACE GCl 0.2 ND <0.3*** 0.2* <,005* <.001 0.03*
0.3*
.0005 .001
S-75-SS-25
RSV 0 0 1 0 6 5 8
SAMPLE P 1227 Lot 1053 P 1227 Lot 1050 P 1227 Lot 105^ P C22R, QD 7256
DOW EDC EDC: Neutralized Ba 7323, P C22R Byproduct EDC: Un-neutral lied, BA 7446 P 1227 Run 3, Cut 1 P 1227 Run 6, Cut 1
TABLE 1
HEADSPACE GC 0.2 ND <0.3*,** 0.2* <005* 1-001 0.03*
0.3*
.0005 .001
t BCEE LC 0.1
<0.1 0.15 ND ND
<0.1
0.15
-
GC 1.1
.00! 0.43
-
-
*1dentlfI cat Ion confirmed by GC/M5. **Very high level residual chlorobenzenes.
Special Study S-75-SS-26
HYDROLYTIC STABILITY OF PYDRAULS AMD COMPETITIVE PRODUCTS
SUHHARY-
UV fluorescence analysis for phenolics In Monsanto and competitive hydraulic fluids using a General Motors stability test and analytical method showed:
1. Pydraul 50 E (QC-12820) with Admix 710 Indicates less stability compared to HS-1120 after seven days in a series run for a General Motors project. The Inhibitlve effect of the HS-1120 decays rapidly and after fourteen days the phenolic levels In both fluids are comparable.
2. Similar stability was observed with 1974 production Pydraul 50 E, Pydraul 30 E and laboratory preparations containing production NC-220 ester (12/2/74) stabilized with Unox 289 (7-day stabilities) as compared to Pydraul 50 (QC-12820) used in G. M. Study (1.).
3* Seven-day and fourteen-day stabilities of production NC-220 ester containing MCS 1562 epoxide were better than the HS-1120 used in the G.M. test.
4. Cartridge clay treatment of the production NC-220 ester with either Unox 289 or MCS 1562 showed significant improvement over untreated ester. The MCS 1562 stabilized system was far superior to HS-1120 used in the G.M. series in both seven-day and fourteen-day phenolic levels.
5. Pydraul 179 B from Europe has a seven-day stability equal to HS-1120 used in the G.M. series and contains 50t less phenolics after fourteen days.
6. The competitive product FQ 220 CF shows a seven-day stability equal to that of the clay-treated production NC-220 ester with MCS 1562. The fourteen-day phenolic level Is the best of all samples analyzed, about 2/3 that of the clay-treated NC 220/MCS 1562 sample or the Pydraul 179 B from Europe.
7. Wide variations were observed In competitive samples having the same designation suggesting changes In formulation. HS-1120 #C228l shows poor stability compared to HS 1120 used In the G.M. series. FQ 220 #3733-5-7 shows poor stability compared to FQ 220 CF. Phenolic levels after seven and fourteen days are equal to those of the production Pydraul 50 E and Pydraul 30 E samples.8
8. At the completion of the tests, fourteen days, all of the Pydraul fluids except Pydraul 179 B, all of the untreated production NC-220 samples containing either Unox 289 or MCS 1562 and all of the laboratory samples of NP cresylfc and NP phenol showed black pre cipitates. No precipitates were observed in the clay-treated NC"220 ester samples or in the competitive products.
RSV 0010659
4u
S-75-SS-26 Page Two
INTRODUCTION
A large sales potential for Pydraul fluids exists with General Motors if the hydrolytic stability of Monsanto's products can be shown to be equal to or better than competitive products.
A joint project was initiated with Chevrolet's Central Laboratory to measure phenolics generated using their stability test and their UV fluor escence analytical method. General Motors had reported high values, for example 1,200 ppm at 0 hrs. for a Pydraul 50 E sample (lot unknown) which appeared questionable.
The program was extended to obtain internal data on the stability of new phosphate esters, production samples of Monsanto Pydraul series fluids, competitive products and the effects of new epoxide acid scavengers to improve the stability of Monsanto products.
EXPERIMENTAL
lOOg test fluid and 1g water were vigorously shaken for one minute and transferred to a mini o/c tube (1" diameter X 10") equipped with a con- . denser. The test mixture was held in a mini o/c bath at 250*F for seven days. One m2 aliquots were removed periodically for analysis of generated phenolics. The test was extended to fourteen days to overcome an Initial induction period or Inhibitlve action observed with some samples.
Analytical data for phenolics were obtained in duplicate. 0.200 to 0.250g of the aliquot was weighed to the nearest mg and sufficient water adjusted to pH 4 with HfPO* added (200 to 250 mi) to give a 1,000:1 mixture of water to sample. The 1,000:1 mixture was vigorously stirred for 30 minutes at room temperature with a magnetic bar, allowed to settle for 15 minutes and filtered through 12.5 cm Whatman #42 paper. The first 25 to 30 mi of fil trate were discarded and the next 100 mi collected for analysis. Samples of new fluids were equilibrated In a similar manner to obtain 0 hour data on phenoHe 1 eve Is.
Ultraviolet fluorescence analysis was carried out using an Aminco-Bowman SPF using 1 cm2 cells and a 1.0 iig/mi quinine sulfate solution in 0.1 N H2S0i, as reference. The quinine sulfate was excited at 350 mm and the emission detected at 450 nvn.
The UV fluorescence method was calibrated using J. T. Baker's phenol (cat. no. 2858) as the standard. The substitution of phenol for p-cresol, the standard specified by the G.M. method, was mutually agreed on by G.H. and Monsanto because of the long-term storage Instability of the dilute p-cresol solution used to check the spectrofluorometer. A series of standard solu tions containing 0.15 to 3.0 yg phenol/mi water were prepared and fluores cence measurements made using 273 mm excitation and 302 mm emission. A
RSV 0010660
S-75-SS-26 Page Three
few drops of 0.1 N NaOH were added and the fluorescence measured again. The difference between the acid end base values was the fluorescence due to phenol. A plot of relative fluorescence calculated by:
rel. floor. - (IT X sensitlvity)#c|(J - (tT X sensitivity)^^ * sensitivity)^
versus phenol concentration showed a linear relationship in the range of 0.15 to 2.50 ug/mi.
Linear regression analysis gave the straight line equation relating phenol concentration to relative fluorescence as:
ug phenol rel. floor. + 0.0012 0.1320
and ppm phenol Ics measured as phenol as:
ppm 1000 x ug (rel. fluor. * 0.0012) (Vol.)
(0.1320) (wt7 of spl.)
SYSTEMS STUDIED
A. General Motors Series
1. Pydraul 50 E Lot 0C 12820 MIC 255266 2. HS-1120 obtained from Chevrolet Central Laboratory 0$ ring isoprophyl
B. NC-220 Ester (12/2/74) - New Epoxides
1. 0.5* Unox 289 MIC 285108 2. I.Ot Unox 289 MIC 285108 3. 1.02 MCS 1562 MIC 285108 4. 1.5% MCS 1562 MIC 285108
C. Cartridge Clay-Treated NC-220 Ester
1. MCS 1742 - 1.0% Unox 289 MIC 285101 2. MCS 1743 - 1.5t MCS 1562 MIC 285101
D. HP Esters with 1.5t Admix 710 epoxide + 30 ppm DCF
1. MCS 1769 NP cresylic 220 MIC 265112 2. MCS 1770 NP cresylic 150 MIC 285115 3- MCS 1776 NP phenol 220 MIC 285128 4. MCS 1779 NP phenol 150 MIC 285129
E. Monsanto Products
1. Pydraul 179 B Europe 9/12/72 MIC 285135
2. Pydraul 30 E Lot Q0 33701
MCS 1772
3. Pydraul 50 E Lot 00 34520 MCS 1771
RSV 0010661
S-75-SS-26 Page Four
SYSTEMS STUDIED (CONT'D)
F. Competitive Products
.1 FQ 220 CF 6/22/73 .2 FQ 220 3733-5-7
3- HS-M20 C-2281
MIC 265135 OS ring isopropyl MiC 285135 2k% ring isopropyl MIC 285135 96* ring isopropyl
DISCUSSION
The experimental data are tabulated in Tables I to VI and shown graphically in Figures 1 to 7*
A. Genera) Motors Series
At the end of seven days (the conditions of the Chevrolet Central Lab. test) HS-1120 was considerably better than Pydrau) 50 E (6,300ppm phenol les vs. 31,000). The shape of the HS-1120 curve (cf. Figure 1) shows that up to five days there was an inhibitlve effect on phenolic genera tion. After this induction period, phenolic generation was rapid. On extension of the test to fourteen days, this validity of this premise was demonstrated. Phenolic levels in the HS-1120 system comparable to those In the Pydraul 50 E system were obtained.
8. NC-220 Ester - New Epoxides
1. Unox 289
At the 0.5* level, this epoxide shows some Inhibition to phenolic formation, but between four and seven days this effect is removed and phenolic levels equal to that of the Admix 710 system are obtained. At the 1.02 level of Unox 289, the system shows a pattern similar to HS-1120 with early inhibition.
2. MCS 1562
At both the 1.0 and 1.52 levels, better inhibition to formation of phenolics Is found than in the G.M. HS-1120 series after seven days. After fourteen days, this inhibitlve effect is still operating with phenolic levels 1/2 to 2/3 those observed in the HS-1120 system.
C. Cartridge Clay-Treated NC-220 Ester
Vast improvements in phenolic levels were observed using either 1.02 Unox 269 or 1.52 MCS 1562 in clay-treated NC-220 Ester. Both systems are better than HS-1120 after both seven days (5300and 1,000 ppm vs. 6,300ppm) and fourteen days (21,000and 15,000ppm vs. 28,000ppm).
0. NP Series Esters with Admix 710
The NP Cresylic 220, the NP Phenol 220 and NP Phenol 150 esters con taining 1.52 Admix 710 show less inhibition to phenolic generation. NP Cresylic 150 containing 1.52 Admix 710 is somewhat better but much higher after seven days than the HS-1120 in the General Motors Series (20,000 ppm phenolics vs. 6,300).
RSV 0010662
S-75-SS-26 Page Five
E. Monsanto Production Samples
Pydraul 179 B (Europe 9/12/72) gives phenolic levels after fourteen days comparable to clay-treated NC-220 ester containing 1.5% HCS
1562. Inhibition time is shorter for Pydraul 179 B. Phenolic levels after fourteen days are lower than HS-1120 and equal to those obtained with clay-treated NC-220 stabilized with HCS 1562.
Pydraul 30 E (QD 33701) and Pydraul 50 E (QP 3*520) gave almost identical results to those obtained for Pydraul 50 E (QC 12820) used in the General Motors series. There is minimal inhibition to phenoIic generation.
F. Competitive Products
FQ 220 CF outperforms all the fluids tested at fourteen days. Sevenday phenolic levels are comparable to HS-1120 (*,200 ppm vs. 6,300 ppm), but higher than clay-treated NC-220 with MCS 1562 (1,000 ppm).
FQ 220 #3733-5-7 and HS-1120 IC-22&1 tend to be unstable under these conditions. Both systems show some inhibition to phenolic genera tion for two to three days. Phenolic levels increase rapidly to those found In Pydraul 50 E and Pydraul 30 E after seven and fourteen days.
G. Fluid Appearance After Fourteen Days
1. Precipitates
Black precipitates were observed in all the production Pydraul samples except Pydraul 179 8, all samples prepared with NC-220 (12/2/7*) and the laboratory batches of NP cresyllc and NP phenol.
Pydraul 50 E (QC 12820) G.M. Test Pydraul 50 E (QO 3*520) MCS 1771 Pydraul 30 E (QD 33701) MCS 1772 NC-220 ester - 0.5% Unox 289 NC-220 ester - 1.0% Unox 289 NC-220 ester - 1.0% MCS 1562 NC-220 ester - 1.5% MCS 1562 NP cresylic 220 MCS 1769 NP cresylic 150 MCS 1770 NP phenol 220 MCS 1776 NP phenol 150 MCS 1779
medium to heavy medium to heavy medium to heavy medium light to medium heavy heavy heavy heavy medium to heavy medium to heavy
No precipitates were observed In the laboratory clay-treated NC-220 samples, the Pydraul 179 B sample from Europe or In any of the competitive samples.
RSV 0010663
S-75-SS-26 Page Six
6. Fluid Appearance After Fourteen Days (Cont'd)
2. Color
Orange
Pydraul 179 B Europe 9/12/72 FQ 220 CF
Slight Darkening
HS-1120 G.H.series Clay-treated NC-220 - 1.02 Unox 289 HCS 17^2 Clay-treated NC-220 - 1.52 MC5 1562 HCS 173
Dark
NP phenol 220 HCS 1776 FQ 220 #3733-5-7 HS-1120 G.H. test HS-1120 CF 6/22/73
Very Dark
Pydraul 50 E (QC 12820) G.H. test Pydraul 50 E (QD 36520) HCS 1771 Pydraul 30 E (QD 33701) HCS 1772 NC-220 0.52 Unox 2$$ NC-220 1.02 Unox 289 NC-220 1.02 HCS 1562 NC-220 1.52 HCS 1562 NP cresylic 220 HCS 1769 NP cresylic 150 HCS 1770 NP phenol 150 HCS 1779
H. Haximum Phenolic Values
A theoretical calculation was made to determine the maximum level of phenolics that could be generated under the General Hotors test conditlons.
Water
18 g/mole
1 g * 0.0556 moles
cumylphenol
212 g/mole
monylphenol
220 g/mole
0.0556 moles X 212 g/mole 0.0556 moles X 220 g/mole
11.8g cumylphenol 118.000 ppm cumylphenol 12.2g monylphenol 122.000 ppm monylphenol
RSV 0010664
S-75-SS-26 Page Seven
If no water is lost during the test, the phenolic levels of 35,000 to 40,000 ppm observed probably represent an equilibrium condition of:
" (ArO)3 P(-0) + HjO --Ar0H (Ar0)a P<-0) OH ArOH (ArO) 2 P(-0) OH ------- (ArO)s P(HJ) + H20
References:
MIC 255266
MIC 255267 MIC 285101 MIC 285106 MIC 285112 MIC 265115 MIC 285128 MIC 285129 MIC 285135 MIC 285149
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louts, Mo.
7/75 ~ B. Katlafsky, P. F. Heimsch, M. V. Dietrich
RSV 0010665
S-75-SS-26
Hours 0
48 96 120 144 168 240 336
TABLE I
HYDROLYTIC STABILITY OF GENERAL MOTORS SERIES ppm PHENOLICS CALUCLATEO AS PHENOL
Pydraul 50 E
QC 12820 MIC 255266
HS 1120 Chevrolet Centra) L*
MIC 255266
450 600 *50 600
3.800 3,750
840 820
26,900 27,000
27.300 25,800
1,100 1,050
30,400 31,500
30,300 32,800
6,250 6,300
35,900 36,800
38.500 38,000
28,000 27,800
Appearance after 336 hours
Fluid Tube
Very dark
Med-heavy black ppt. dark streaks on upper Mai Is
Dark-clear Clean
i RSV 0010666
S-75-SS-26
Hours 0
48 72 96 144 168 240 336
TABLE II
HYDROLYTIC STABILITY OF MO220 ESTER SERIES ppm PHENOL ICS CALCUALTEP AS PHEHOL
0.5% Unox 289 HIC 285108
1.0% UNOX 289 MIC 285108
1.0% MCS 1562 HIC 285108
285 295 278 282 295 278
1,340 . 1,330
1.130 1,220
1,290 1,270
5,200 5,270
2,160 2,730
1,560 l.S'lO
4,180 4,260
34,000 33,700
9,600 9,700
4,140 3,950
33.1*00 33,200
38,500 38,200
15,700 15,900
1.5% MCS 1562 MIC 285108
274 274
1,830 1,760 2,030 2,100
3,280 3.300
18,100 17,900
Appearance after 336 hours
Fluid
Very dark
Very dark
Very dark
Very dark
Tube
Heavy black ppt. black spots on upper walls
Light to medium black ppt.-black streaks on upper wl Is
Heavy black ppt. black spots on upper walls
Heavy black black spots upper walls
RSV 0010667
S-75-SS-26
TABLE III
HYDROLYTIC STABILITY OF CARTRIDGE CLAY-TREATED NC-220 ppm PHENOLICS CALCULATED AS PHENOL
Hours
HCS 1742 1.0* Unox 269
HIC 285101
HCS 1743 1.5* HCS 1562
HIC 285101
0 445 449
267 267
72 543 600
456 426
96 895 925
168 5,440 5,160
524 566
1,040 980
336 20,900 20.700
14,800 14,900
Appearance after 336 hours
Fluid
Tube
Some darkening Clean
Some darkening Clean
i t
RSV 0010668
S-75-SS-26
Hours 0
68 72 96 168
TABLE IV
HYDROLYTIC STABILITY OF HP ESTERS WITH 1.5* ADHIX 710 ppm PHENOLICS CALCULATED AS PHENOL
HCS 1769 NP Cresyllc 220
MIC 285112
HCS 1770 NP Cresylic ISO
MIC 285115
HCS 1776 NP Phenol 220
MIC 285128
MCS 1779 NP Phenol 150
MIC 285129
532 622 683 652 536 630 695 633
1,720 1,750
2,280 2,270
6,070 6,260
16,100 15,900
2,050 2,030
5,800 5,730
18,600 19,100
18,300 ` 18,100
3*1,300 36,300
20,500 20,300
62,500 61,900
36,000 3*1,900
Appearance after 366 hours
Fluid
Very dark
Tube
Heavy black ppt. a few black spots on upper walls
Very dark
Dark
Heavy black ppt. Medium to
a few black spots heavy black
on upper walls
ppt.
Very dark
Medium to heavy black ppt.
RSV 0010669
S-75-SS-26
Hours 0
48 96 144 168 240 336
TABLE V
HYDROLYTIC STABILITY OF MONSANTO PRODUCTS ppm PHENOL ICS CALCULATED AS PHEHOL
Pydraul 179 8 Europe 9/12/72
MIC 285135
Pydraul 30 E QD-33701 HCS 1772
153 289 149 282
543 532
1,810 1,850
18,100 18,000
30,800 28,900
7,590 7,670
14,600 14,300
39,500 38,300
41,700 41,600
Pydraul 50 E 00-34520 HCS 1771 361 373
25,400 26,600 27,800 27,600
31,800
32,700
35,300 34,400
Appearance after 336 hours
Fluid
Tube
Orange Clean
Very dark
Medium to heavy black ppt. dark granular spots on upper wal Is
Very dark
Medium to heavy black ppt. dark granular spots on upper walls
RSV 0010670
S-75-SS-26
Hours 0
48 96 168 336
TABLE VI
HYDROLYTIC STABILITY OF COMPETITIVE PRODUCTS ppw PHENOL ICS CALCULATED AS PHENOL
FQ 220 CF 6/22/73
MIC 285135
551 558
FQ 220 3733-5-7 MIC 265135
1,370 1,400
HS 1120 C-2281 MIC 285135
358 350
710
1,980
1,360
668
1,9*10
1,350
1,000 960
6,370 6,480
8,360 8,360
4,250 4,120
26,400 27.000
22,300 22,800
10,400 10,900
30,700 31,300
28,800 28,700
Appearance after 336 hours
Fluid
Orange
Tube
Clean
Dark Clean
Dark orange Clean
R$ V 0010671
`Jl. Jv.lU
RSV 0010672
ni"
f r i uu r\ t i RSV 0010673
RSV 0010674
Phenolic*
HYDROLYTfC STABILITY OF NP CRESYLlC ESTERS
Jw -1 <J
RSV 0010675
Ppm PhenoJics
t-munt 3 HYOROLYTfC STABJ LITY OF HP PHENYL ESTERS
.- Lr EOttTAItHUG -i-r5* 'ACM I X~7i0 -EPOX+Dt --
O O'
RSV 0010676
0 2 . k 6 8 10 12 l* DAYS
RSV 0010678
Spectroscopy S-75-SS-27
DETERMINATION OF VINYL CHLORIDE, TRICHLOROETHYLENE AND EPICHLOROHYDRIN IN AIR AT BAXLEY, GEORGIA PLANT
INTRODUCTION This study determined levels of vinyl chloride (VC1), trlchlorethylene (TCE), and epichloropydrln (ECH) In the air at this location. SUMMARY Results are given In the attached table. The values reported in this table may be high due to the presence of Interfering components. They should be considered as upper limits. Concentration for TCE ranged from 2.8 to 0.3 ppm while ECH was detected in amounts of 8.3 to 0.3 ppm. Vinyl chloride was not detected with a detection limit of 0.3 ppm. EXPERIMENTAL Samples were collected on a C-I05 1 meter column and analyzed on a tenax column. Two-hour samples were taken with a flow of about 10 ml/mtn. Spec troscopy Method 74-7 and Special Study 74-34 give details of the method and procedure of analysis and calculations. GC retention times were used for identification.
Reference: GC/MS file #75-124
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 7/75 * L. M. Chapman, C. Hoffmann, M. W. Dietrich
RSV 0010679
S-75-SS-27
SET I*
ECH (ppm)
*TCE (ppm)
i
H-4 8:00-10:00 a.m.
N.D. <.3
0.4
i
M-2
ij
10:00-12:00 p.m.
N.D. <.3
1.3
i
H-3
i
2:00-4:00 p.m.
lost In analysis
4:00-6:00 p.m.
0.4
0.3
,
L-4 12:00-2:00 p.m.
L-6 2:00-4:00 p.m.
M-1 4:00-6:00 p.m.
SET II* ECH (ppm) 8.3 0.3 3-0
TCE (ppm) 2.8
N.0. <..3 0.6
*The values reported in this table may be high due to the presence of Interfering components. They should be considered upper limits.
RSV 0010680
Spectroscopy S-75-SS-28
PERSONNEL MOWITORIMG OF PCP UNIT AT NITRO PLAHT
INTRODUCTION
This study was conducted to determine personnel exposure to polychlorinated propenes end propenes.
SUMMARY
Results are given In the attached table. In sample # P-4003 taken during the process, several chlorinated propanes and propenes were detected. The attached spectrum Illustrates how selected Ion detection (at mass 75) In conjunction with a total Ion scan (Tl) on our new HP MS obtained a good Identification and separation of the following components: dlchloropropene, trans-trIchloropropene, cis-trlchloropropene, tetrachloropropane, and tetrachloropropene. Levels of these materials ranged from 0.4 to about
3.0 ppm. Background samples showed more than thirty organics ranging from 10 to 43 ppm present. This high background may be due to a rubber cap used in shipping the sampling tubes to St. Louis.
EXPERIMENTAL
For basic procedure, refer to Spectroscopy Method 74-7* An 0V-1 one-meter glass column was used for the analyses and a tenax GC for collection. From 3 to 8 liters of air were taken with an $KC personnel pump. Calculations are based on known standards and identification was made by GC/MS in the selected ion mode.
CALCULATIONS
Liters of air * supplied by Bruce Eley
0)
............ Weight
^ of
. sample
area
, of
, sample
X
-c-o---n--e--.---s--t--d--.----(-u*q/'1)zvX~evt,oA l.
Ini. (ui) -*-------------
(ug)
Con(cuengt/rl)at I on - nter* of *ir
Examp1e #P-4003 trans-trichloropropene
Liters of air 6.3 Weight of sample - 992758 X ['^g,' - 5.4
Concentration - 5.476.3 0.9 ug/i
Referenca: GC/MS file #75-62
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
8/75 " L. M. Chapman, M. W. Dietrich
RSV 0010681
S-75-SS-28
RSV 0 0 1 0 6 8 2
St. Louis Blk P6-100I* PB-2001*
Dlchloro propane HD
NO
NO
TABLE (ug/1)
Trans-trIchloro propane
ND
Cls-trlchloro propene
ND
NO NO
ND ND
Tetrachloro propane ND
ND
NO
Tetrachloro propene ND
ND
ND
Total Other Organics
3
42
18
PB-3001*
NO
NO
ND
ND NO 32
P-4Q0I 2.9 ND
HD 0.6 ND 25
P-4002 2.3 ND
NO 0.4 ND 16
P-4003
1.0**
0.9
0.6
0.5 0.5
10
* Theie samples were taken of the plant air before the process began.
** This value Is the combined concentration of Isomers of dlchloropropenes In Hlx I and Mix II (see attached chromatogram). Nix I also has an unresolved component other than dlchloropropene which appears to be trlchloroethene. Similarly* Nix II also has another component with HW 108. Therefore, the result Is a maximum value.
NITRO PLANT PENTACHUmOFROPANE PROCESS
RSV 0010663
1 Spectroscopy S-75-SS-29
BISCHLOROMETHYL ETHER CONTENT OF DEQUEST PRODUCTS AND EVERETT PLANT AIR
INTRODUCTION
This study was undertaken because of concern that some Dequest products may contain harmful levels of blschioromethyl ether (BCME). BCME is listed by OSHA as a human carcinogen. Both final product and air in various produc tion locations were analyzed to insure no safety problems exist for our workers or customers.
SUMMARY
A method was developed for determining the BCME content in Dequest products via a headspace analyses, l.e. the BCME content of the air above the pro duct was determined rather than the product analyzed directly (see discussion) Results by this method were shown to be consistent with those obtained by a more direct analyses procedure. Our standard methodology for air monitor ing was used for determining the BCME content of air in the Everett Plant Dequest department.
Low levels of BCME were found in certain Dequest products and in air taken from a synthesis carried out In a lab reactor. Values found are given in the attached tables. No BCME was found in air taken from a filled Dequest 2041 fiber pack or in air taken in the Dequest department of the Everett Plant.
The Monsanto Medical Department has taken the position that they see no reason that the levels of BCME found would constitute a problem.
DISCUSSION
A headspace GC procedure was chosen for this analysis for two principal reasons. First, it provides a highly sensitive approach free of the matrix effects which might be expected If Dequest products are injected directly into a GC. Interferences have been observed when a similar analysis for BCEE in Phosgards was attempted by direct GC analyses. Extraction of the product followed by GC analyses appears a satisfactory alternative but has poor sensitivity as indicated in Table I. The second reason is more funda mental. Since BCME fs formed if both HC1 and formaldehyde are present, it Is possible that BCME could form in the headspace above Oequest even though there Is no BCME In the product. A headspace procedure covers both possi bilities since, if BCME were in the product, a significant percentage would also be in the headspace.
I. BCME in Products
A. Sample Collection
Headspace over liquid Dequest samples was taken by charging 5 ml of sample via syringe into a 125 ml suction flask containing a Teflon stir bar and fitted with a 5 X 130 mm glass dip tube set In a Teflon covered cork. The dip tube came within 20 n*n of the bottom. The side arm carried a short tube charged with activated charcoal and a T through which excess N2 flowed. Aspiration was applied through the dip tube for 2.5 min. while stirring for equilibration, flow
RSV 0010684
S-75-SS-29 Page Two
BCHE In Products (Cont'd)
A. Sample Collection (Cont'd)
rate adjusted to AO ml/mfn. Then a sampling tube was mounted on the dip tube using a short length of Teflon tubing and aspiration continued for usually 7.5 min. Sampling tubes were 1/A" X 6" glass charged with 1$0 mg Tenax GC and conditioned at 250*C.
Ether extraction of liquid samples was carried out on SO ml portions transferred via syringe to a stemless short form 60 ml separatory funnel. A small amount of dlethylether was added and after agita tion separation was hastened by centrifuging at low speed in a bucket type centrifuge. An estimated 1.5 ml of the ether dissolves and at least 0.5 ml remains in emulsion. The clear ether extract was used for direct GC injection.
B. Analyses
With the helium flow off and the vacuum pump to the mass spectro meter off, a 1/A" X 6" Tenax sampling tube Is placed in the heater and externally connected to the Injection port of the GC. At this time, the analytical column is cooled to -50*C with liquid nitrogen. Now, the helium flow is diverted to flow through the precolumn. Quickly, check for leaks In the system, turn on vacuum pump to mass spectrometer, turn on heater and start GC program and clock to mass spectrometer. Heat is supplied by a heater consisting of 86 turns of 2A gauge asbestos covered Chrome! "A" wire ( 75 ft.) coiled to fit Into a 120 mm X 10.1 tm i.d. Pyrex tube. The coil is lined with two turns of 2.5 mil aluminum foil allowing a slide fit for the sampling tubes. Twenty volts brings the sampling tube to 200C in about 2.5 minutes. After four minutes, turn off heater and after 7 1/2 minutes open the valve to the mass spectrometer and start scan at 7 minutes 50 seconds.
The following lists the GC/MS parameters:
GC - helium flow about 30 ml/min auxiliary temp - 250*C injection port temp - 250*C analytical column - 10X S-A09, 2 meter X 1/8" on 80/100 Chrom V H.P. program - -50*C for A min then up to 1d0*C at 32*/m!n
MS - Internal source heater 166*C column A, B. valves 290*C dodecapole 100*0 program SIM masses scanned-79 81, A9, 51 dwell time - 250 each offset - 0 run time - 15 minutes gain - 7
RSV 0010685
S-75-SS-29 Page Three
I. BCHE In Products (Cont'd)
B. Analyses (Cont'd)
After the samples were analyzed, a standard of 0.006 ug/ul of BCHE was Injected into the GC and run under similar conditions. Compari son with the standard by intensity of the characteristic ions and GC retention time provided the means of identlfIcation. Attached is the selected ion chromatogram for BCHE. Selected ion detection provides very high sensitivity by collecting data only from selected fragment ions of the component of interest rather than the total spectrum. In this case, fragment Ions 79 81, 49 and 51 are charac teristic ions of BCHE. Calculations were based on the mass 49 ion, since some interferences were observed at the other ions.
The bfschloromethyl ether (BCHE) used for the standard was provided by Hyron J. Holm (lab prep. N6P 222 474 6/73) as a solution ca. 5% in hexane. The standardization was done indirectly on the assump tion that the flame ionization detector should have a reasonably equivalent response for BCHE and 1, 2-dIchloroethane. A standard was prepared of close to 1 g. of 1, 2-dichloroethane in 10 ml of ' hexane solution and was twice diluted 1 to 10 to provide a 1000 ug/ul standard. By trial a comparable dilution for the BCHE was found. Two micro!iters of these were run alternately on the GC under the analytical conditions to give three sets of area print outs on the Autolab. These were averaged and compared to give the value 0.61 U9/UI for the BCHE standard. A thousand-fold dilution provided the working standard labeled #14-0, 0.00061 ug/ul
II. Deguest 2041 Fiber Pack
A. Sample Collection
Headspace over finished goods was sampled using the same type sampling tube. No vacuum line was available at the sIte, therefore a one liter suction flask was equipped with a vacuum gauge and an Ideal refriger ator valve. With the flask evacuated, a program of valve setting ver sus gauge reading was determined to maintain approximately 40 ml/min. flow. A one-half and a one liter sample were collected.
B. Analyses
The procedure described in Section I was used.
III. Laboratory Reactor
A. Sample Collection
Reactor headspace "grab" samples were obtained by means of 40 mm diameter cylindrical bulbs, approximately 230 ml volume with Teflon corks at each end. The bulbs were first evacuated via the far end. Then the cork was closed and the near end opened to take up headspace through a short connection. The resultant sample contained approximately 2 ml aqueous HC1 condensate.
RSV 0010666
S-75-SS-29 Page Four
The sample bulb was supported vertical1y, a glass/Tenax sample tube attached at the upper end using a short piece of Teflon tubing. The upper 2/3 of the Tenax packing was equipped with a room temperature ~ water jacket. The upper cork was opened, then gentle aspiration was applied to the sample tube while the lower cork was "cracked*1 to allow a slow bubbling. Nitrogen overflow was supplied to the Inlet. A heat gun was employed during the 15 min. transfer period keeping the lower portions of the bulb hottest, the upper portion definitely warm and the upper cork and tubing up to the Tenax packing just warm enough to avoid condensation. Collections from the reactor at 60 min. and 120 min. were taken. 6. Analyses The procedure described In Section I was used. IV. Everett Plant Air A. Sample Collection Air samples were obtained by drawing air through a Tenax GC pre-column attached to a personnel monitoring pump with rubber tubing. Sample sizes ranged from 4 to 9 liters at the various locations In the plant. See Table 11C for results. 8. Analyses The procedure described in Section I was used.
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 7/75 " L. M. Chapman, 0. E. Klnast, H. W. Dietrich
RSV 0010667
S-75-SS-29 RSV 0010688
S-75-SS-29
TABLE I BCHE IN DEQUESTS
A. HEADSPACE
Sample
Dequest 2060, Final Hexagon, Unstripped
Above After Sitting 24 Hours
Dequest 2060, Hexagon, Stripped
Dequest 2000, Unstripped, 255663 #3
Dequest 2000, EBU18, Stripped
Dequest 2054, Lot EC 339-2
Oequest 2006, Unstripped, #255663 #4 (2 Phase)
Unfiitered Lonza By-product (Dequest 2000 Type)
Filtered Lonza By-product (Dequest 2000 Type)
Concentration BCHE 1. PPB In Air ca .5 PPB in Air N.D. .5 PPB in Air N.D. .5 PPB in Air N.D. <^5 PPB in Air N.D. <.5 PPB in Air N.D. <5. PPB 7 in Ai 0.4 PPB in Headspace 1.4 PPB in Headspace
B. EXTRACTION (DIETHYL ETHER)
Dequest 2060, Hexagon, Unstripped
Dequest 2006, Unstripped
N.D.* <20 PPB in Liquid N.D.* <100 PPB In Liquid
*Assumlng 10% efficiency of solvent extraction RSV 0010689
S-75-SS-29
TABU II OTHER BCHE ANALYSES
A. DEQUEST 2041 FIBER PACK
Sample
Dequest 2041 Lot 176-18-8B
B. LABORATORY REACTOR
Sample
60 minutes after start of reaction
120 minutes after start of reaction
C. EVERETT PLANT AIR
Sample
#77. 6/4/75 Dequest 2000 drum filling
#18, 6/18/75 Airspace above scrub water
#68. 6/24/75 Airspace Dequest 2000 drum storage
#50. 6/27/75 Airspace above scrub water tank
#34, 6/30/75 Airspace near HC1 and formaldehyde storage tanks
Concentration BCHE N.D. <.5 PPB In Air
Concentrat Ton BCHE 4. PPB In Air 12. PPB In Air
Concentration BCHE N.D. <0.5 PPB N.0. <0.5 PPB N.D. <0.5 PPB N.0. <0.5 PPB N.0. <0.5 PPB
RSV 0010690
Spectroscopy S-7S-SS-30
TRACER LITHIUM ANALYSES - NITRO PLANT EFFLUENT-11
SUMMARY
Lithium Is used as a tracer to observe the dilution of the Nitro plant liquid effluent. Fifty-four effluent samples ranging from 0.05 to 0.2 ppm Li were analyzed by atomic absorption.
DETAILS All samples are cloudy and contain some solids. Preliminary survey anal yses show they contain considerable sodium and calcium and roughly 0.02 to 0.4 ppm Li. Instrument changes since the previous set were analyzed required a revision of the method used. Sodium Ion enhances the lithium response, but enough is present so that all samples are equally enhanced. Addition of sodium Ion or hydrochloric acid, agitation or filtration was found to have negligable effect. The lower lithium values are within ten times the system's noise level. Most burner and flame combinations pro duce an upward curvature in the absorbance versus ppm plot. The nitrous oxide burner using a small and very oxidizing flame was found to provide ,, the flattest response when used at 6 ran below the grazing position. There is a matrix effect, l.e. a given amount of LI In the sample does not pro duce the same response as a pure water solution. Therefore the samples were taken In two groups and four from each group were analyzed by the method of standard additions. The values obtained for the selected four were used to peg the response for the group. This enabled the quick method of direct analysis to be used for the bulk of each group, without addition or separations, as in the previous work. The ppm LI are listed in the table.
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 7/75 - 0. E. KInast, M. W. Dietrich
RSV 0010691
SAMPLE NUMBER -
Ppm Li
tot 0.048
102 .048
103 .047 (0.047)*
104 .045
105 .045 106 .049
107 .062
108 .077
109 .090
no .101
111 .106
112 .104 (0.103)
113 .095 114 .090
115 .088
116 .086
117 .085
SAMPLE NUMBER
118 119 120 121 122 123 124 125 126
127 128 129 130 131 132 133
ppm LI
0.081 .081 .080 .080 (0.080) .077 -075 .074 .074 .071 .067 .066 .059 .060 (0.060) .057 .056 .055
SAMPLE NUMBER
200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220
ppm LI
0.050 .054 .054 .049 (0.050) .095 .204 .166 (0.165) .147 .110 .110 .093 (0.095) .082 .074 .072 .067 .059 057 .055 (0.053) .052 .053 .050
* Values In parenthesis were those obtained by standard addition. RSV 0010692
Spectroscopy Special Study S-75-SS-31
ANALYSIS Of MlIRQ PLANT WASTE WATERS FOR TRACE ORGANIC POLLUTANTS
INTRODUCTION
Plant waste water samples equivalent to those collected by EPA representa tives were analyzed for trace organic pollutants. The Information obtained from these samples will be used to plan possible reaction to EPA results. Analyses of all samples were carried out in accordance with Spectroscopy New Technique 70*3* The analytical techniques used were the same as those it was anticipated the EPA might use.
SUMMARY
Samples obtained from the river water Intake# tall oil pond# and treatment plant were analyzed. A total of 16 components were observed in the treat ment plant samples and 32 In the tall oil samples. No organic components, <100 ppb, were observed In the river water Intake samples. In general the components identified were associated with plant processes and ranged in concentration from 100 ppb to 9 ppm.
RESULTS
The components Identified and their approximate levels are shown in Table I. Five of the twelve components observed In the treatment plant samples were identified while only two of the thirty-two components detected In the tall oil samples were Identified. The components not Identified In the tall oil samples appear to be a complex mixture of phenolic and hydrocarbon type constituents. In Table II the GC retention time and concentration of the individual components formed in a set of tall oil pond samples are shown. Only ten of the thirty peaks detected but not identified were at levels greater than 1 ppm.
Two differences were noted upon comparison of the peaks found in the extracts of the acidified and non-acid!fled samples. First, the acidified samples contained a larger number of components and secondly# compounds found in both were generally at higher levels In the acidified samples. These dif ferences could be attributed to either microbial degradation or the fact that all samples were extracted as received without any pH adjustment. If the non-acldifled sanples had been acidified higher recoveries of the acidic components might have occurred.
In order to Insure that any basic organics were being extracted# the acidi fied saddles were made basic and re-extracted. No addition compounds were detected in the basic extracts.
No detectable (<.1 ppm) organics were found In the T-56 (River) 69 and 6/11 samples, both as is and acidified.
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis# Mo.
6/75 - E. S. Tucker, 0. E. Klnast# M. W. Dietrich
RSV 0010693
S-75-SS-31
TABLE 1
- Components
f5T75 6-9 a 10
Acid
Benzothlazole
0.2
2-Hethylbenzothlazole
0.5
2, 2, 4 - Trlmethyl-6-ethoxy- 1.7 quinoline
2-Hydroxybenzoth1azole
6.7
2-Mercaptobenzoth1azole
1-3
ppm Not Identified
5.9 (6)**
ppm Total Organics
16.3
PPM* Found
MH #3
mT73
6-9 ft 10
6-11
N.A.
Acid
NO 0.6
0.8 0.7
2.1 1.3
0.2 5.8 NO 0.7 A.3 (7)** 8.4 (5)** 7.4 17.5
MHl3 6-11 N.A. NO ND NO
ND ND ND NO
Components
Guaiacol (o-methoxyphenol) 1, 2 - dI-methoxybenzene ppm Not Identified ppm Total Organics
Tall Oil
6-9 Acid
Tall Oil
6-9 N.A.
Tall Oil 6-11 Acid
Tall Oil 6-11 N.A.
5.2 0.2 NO
NO
0.8 NO
0.4
NO
31 .A (30)** 32-9 (29)** 21.4 (29)** 26.4 (26)**
37.4
33-1
21.8
26.4
* Calculated using benzothlazole as an Internal standard ** Number of components NO-None detected, <0.1 ppm
RSV 0010694
TABLE II
Retention Tlme(See)
37 62 70 76 100 117 131 136 U9 161
173 183 192 200 209 222 236 266 263 286
299 313 326 368
357 376 393 605 621
637 666 665 672 662
692 *99 519 550 583 603
Tell Oil
6-9 Acid
PPM
Tall Oil 6-9
N.A.
NO <0.1
0.1 0.1 0.2 2.1
NO 5.2 1.8 5.3 0.8 0.8 0.8 0.6 0.6
1.9 2.1 1.0 1.0
2.7 0.2
0.7 0.9
ND NO
0.3 0.1 <0.1 2.6
0.3 ND
0.5 1.3
ND 2.1
1.5 0.2
ND <0.1 <0.1
0.2 NO
0.3 ND
0.2
1.3
0.5 0.2
ND
5.9 <0.1
NO
0.3 0.2
ND ND
0.8
0.5 <0.1
0.3 ND ND ND
<0.1 <0.1
0.2 ND
<0.1 3.6
0.5 <0.1
0.8 1.8
0.9 2.8 2.2 2.1
0.5 0.6 0.6
NO * None detected* <0*1 ppm
RSV 0010695
Speetroscopy 5-75-SS-32
DETERMINATION OF VOLATILES IN DECATUR. ALABAMA PLANT AIR (V)
INTRODUCTION
This is a continuation of an investigation to determine levels of vinyl acetate (VA) acrylonitrile (AN)t vinyl bromide (VBr), vinylldene chloride (VnCIi)* in air at the south continuous polymer area of the Decatur, Alabama plant. The data obtained will be used to identify areas where worker safety problems may exist.
SUMMARY
Results are found in Table I. GC retention time provided the means of Identjflcation of the volatiles. Acrylonitrile had values from 0.4 to 1.6 ppm, vinyl acetate values ranged from 0.2 to 0.9 ppm, VBr ranged from 0.1 to 1.3 ppm and vinylidene chloride ranged from 0.4 to 3.0 ppm.
EXPERIMENTAL
Refer to Spectroscopy Method 74*7 for the analyses procedure used. Fifteen^ minutes were allowed for the heating of the external collection column to collect the acrylonitrile before proceeding as in Method 74*7. An example of the procedure used to calculate concentration Is given in the S-75-SS-1 report. Sample collection was made using a Model 222-451 SKC pump. Calcu lations were based on known standards.
Reference: GC/MS File #75-150
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
8/75 - L. M. Chapman, M. W. Dietrich
RSV 0010696
i i. V'
$-75-$$-32
H-4 L-12 M-2 H-3 L-9 L-2 L-1 L-5
TABLE I CONCENTRATION PPM
VBr VnCI 2 Blank Blank None Detected
0.8 NO 1.3 3.0 0.8 2.1 0.3 0.4 0.1 0.8
AN*
1.1 1.1 1.6 0.6 0.4
VA*
0.2 0.4 0.9 0.6 0.3
j
* AN and VA are maximum values because of Interference of other components when calculating concentrations.
Volume samp lev 1 "2 liters
Flow rate
vig ml/min
Sampling tlme**1~2 hours
RSV 0010697
Spectroscopy S-75-SS-33 TRACER LITHIUM ANALYSES - NITRO PLANT EFFLUENT*II
SUMMARY Lithium Is used as a tracer to observe the dilution of the Nltro plant
liquid effluent. Fifty-one effluent samples ranging from 0.05 to 0.25
ppm LI were analyzed by atomic absorption.
DETAILS This set of fifty-one samples was analyzed In the same manner as the previous (7/75) set. Forty-seven were found to be within a narrow range, the other four are considerably outside this range. The four and a selected spread of seven out of the group were analyzed by the method of standard additions. The values obtained for the selected seven were used to establish the ppm level for the group, all of which were analyzed by direct aspiration. The ppm values In the table are reported as three significant figures because this reflects a real trend In relative values between adjacent samples. However, only two-figure accuracy should be taken for the actual level.
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louts, Mo. 8/75 - 0. E. Klnast, M. V. Dietrich
RSV 0010698
Spectroscopy S-75-SS-33
RSV 0010699
of 7/23 ppm Olrect Std Add1tlon ppm
1 ._ 2 --
3 .187 4--
5 .206 6 .177
7 .191 8 .183
9 .187 10 .179 11 .173 12 .176 13 .164 14 .165
15 .167 16 .164
17 .166 18 .166
19 .168 20 .162 21 .165 22 .165 23 .161 24 .160
.052 .256 .228 .191
.170
.162
LITHIUH TRACER IN NITWO EFFLUENT
AA 813
of 7/24 ppm Direct Std Addition ddhi
1 .161 2 .161
3 .158 4 .157 5 .159 6 .155 7 .152 8 .153 9 .152 10 .149 11 .149 12 .149
13 .149 14 .144
15 .145 16 .143 17 .143 18 .143
19 .139 20 . 140 21 .138 22 . 141
23 .143 24 .140
.158 .149
.136
Sa of: 7/25
ppm Direct .133
Std Addition ddm 1
132
7/26
.120
7/27
--
.107
Spectroscopy S-75-SS-3*
DETERMINATION OF TRICHLOROETHYLENE (TCE) IN AIR AT DELAWARE RIVER
INTRODUCTION
Air in the Phosphate Ester Department of the Delaware River Plant was sampled while Santicizer 148 was being made. The results obtained Indicate worker exposure levels.
SUMMARY
TCE was detected In the samples from levels of 0.3 to 3*0 ppm, well below the TLV.
EXPERIMENTAL
A Chromosorb 105 pre-column was used for sample collection. A Tenax GC analytical solumn was used for analysis.
Refer to Spectroscopy Method 7*>-7 and Spectroscopy Special Study 73*11 for analysis procedures used. Calculations were based on a known standard. Identification was made by GC retention.
Calculations
Volume of Air m Pump Flow Rate ,, Sampling Time ,, )f..j
Sampled (Liters)
(mi/min.)
(min.)
Weight Sample (pg)
Concentration Sample (pg/L)
Area Sample Peak (counts)
Cone. Std. (pq/pL) Vol. injected (uL) Area of Standard (counts)
* Weight Sample (pg)/Vo1ume of Air Sampled (Liters)
Concentration Sample (ppm)
For Sampling 75*33
Volume of Air Sampled
- 32.5 X 120 X 10"3 - 3.896L
Weight Sample (pg)
38.k pg
Concentration TCE 37855'" 986 "9/L (ug/l)
Concentration TCE * 9*86 X (ppm)
- 1.85 ppm
Reference: GC file #75-151
ss Monsanto Industrial Chemicals Company Applted Sciences St. Louis, Missouri
8/75 - L. M. Chapman, M. W. Dietrich
S-75-SS-3* Page Two
RSV 00 LO 70 L
TABLE Sample Tube
75-33 75-48 75-28 75-45
TCE (ppm)* 1.9 0.4 3.1 0.3
* Pump flow & 32 ml/min Sample volume as 3*9 liters Sample time ft? 2 hours
RSV 0010702
Spectroscopy S-75-SS-35
DETERMINATION Of BENZENE IH AIR AT ANNISTON, ALABAMA PLANT 11
INTRODUCTION
The purpose of this Investigation was to determine worker exposure to benzene.
SUMMARY
Benzene ranging from 0.1 to 1.0 ppm was detected. Two samples were obtained for an 8-hour day and two were short-term samplings where high levels of benzene were expected. The results are given in the table.
EXPERIMENTAL
GC/MS was used In the verification of benzene and calculations are based on a benzene standard. An example of the calculations is given below. Results shown for the blanks were calculated on the basis of the same volume of air used for the settles.
Calculations
Volume of Air m pump flow rate y sampling time x 10~s
Sampled (liters)
(ml/min.)
(min.)
Vt. of sample m area sample peak ,, cone, std, (jig/yl) Vol. Inj. (yl)
(ug)
" (counts)
Area of std. (counts)
Concentration of sample Weight of sample (ug)
(ug/1)
" Volume of air sampled (liters)
Concentration of sample yg/l (sample) X 24j--5 (sample)
(ppm)
"
M*W*
For Sample 75-34 Benzene unloading dock
Volume of air , j,0o M|/m,n> x 15 min. X 10`* - 6 liters sampled (liters)
Wt. of sample
(ug)
Cone. Benzene
(ug/1)
25*9 X
X 2.0 - 18.4 ug
3.1 ug/l
Cone. Benzene (ppm)
3.1 X -j$- 0.96 ft* 1.0 ppm
Reference: GC/MS File #75*144
ss
Monsanto industrial Chemicals Conpany Applied Sciences St. Louis, Mo.
8/75 * L. M. Chapman, M. W. Dietrich, C. Hoffman
RSV 0010703
TABLE
^Draining Benzene Feed Tank
*Benzene Unloading Dock
**Btph Dept 7-8-75 **Biph Dept 7-9-75
Blank
>0.6 ppm***
1.0 ppm
0.2 ppm 0.1 ppm 0.1 ppm
* flow 400 ml/mln sampling time 15 min volume m 6 1 Iters pump - BendIx
** flow - 25 ml/mln sampling time - 8 hours volume - 12 11ters pump - SKC
*** Incorrect instrument attenuation used.
RSV 0010704
Spectroscopy S-75-SS-36
PYORAUL 29ELT / PYDRAUL 5QE GEL COMPLAINT FROM REPUBLIC STEEL
SUMMARY
IR (infrared) analysis of fractions isolated by both solvent extraction and GPC (gel permeation chromatography) of the gel formed In a storage tank of a mixture of Pydraul 29ELT and Pydrau) 50E at R public Steel showed the gel was composed of:
1. Residual phosphate ester. 2. Styrenated rubber. 3. Polyglycol. k. Reation procuct of the epoxy stabilizer with the phosphate
ester half acid. 5. Metal organopyrophosphate. 6. Inorganic phosphates containing high levels of iron.
The IR spectrum, the GPC retention time and the molecular weight by GPC of the polyglycol indicates this is Ucon's polyoxyalkylene glycol 75-H-350,000. This material Is foreign to either Pydraul 29ELT or Pydraul 50E formulations which use Jeffox 0L-2700. The IR and GPC also ruled out Ucon concentrate 700 used in other Pydraul formulations as the glycol source.
SEPARATION
The mixture of phosphate ester fluid and gel were poured into a 25 X 80 hid cellulose extraction thimble and the bulk of the fluid separated by gravity filtration. The concentrated gel was fractionated by the sequentional solvent extraction scheme shown in Figure 1.
The hexane insoluble acetone and chloroform soluble fraction, FII, was further fractionated by GPC column with a linear HW range of 80 to 3000. Because of the unknown quantity or residual fluid held up in the gel, no attempt was made to quantitate the solvent extraction. FII was the largest non-fluid fraction isolated.
DISCUSSION
Infrared analysis of the solvent extracted and GPC fractions showed the gel contained the following:
FI (hexane solubles): residual phosphate ester
FII (hexane Insoluble-acetone soluble-chloroform soluble)
GPC #1: MW > 3000 - mixture of a polyglycol and a styrenated rubber.
GPC #2: MV 3000 - 1550 - reaction product of the epoxy component (Admix 710) with the phosphate ester half acid.
GPC 13: HW 1550 - 730 - similar to GPC #2. The -OH stretch absorbance about 1/3 of GPC #2.
GPC #*: MW 730 - *70 - similar to GPC #3
V
c
KSV 0010705
a-<D-aj-ju Page Two
DISCUSSION
FII (Cont'd)
GPC #S: MW 470 - 350 - similar to CPC #3
CPC #6:
MW 350 - 270 - phosphate ester containing alcohol and possibly ether components. The very low carboxylate ester content indicates low concentration of the epoxy-phosphate ester reaction product. This fraction is either a physical mixture of the base phosphate esters with a low molecular weight polyglycot, or an interaction product of the phosphate ester half acid with the glycol.
GPC #7:
MW 270 - 145 - similar to GPC #6. The organo portion in this fraction is associated with phenyl or cresyl groups,
whereas GPC #6 was associated with nonylphenyl or cumylphenyl groups.
GPC #8: MW 145 * <50 - a metal organopyrophate containing either phenyl or cresyl groups.
Fill (hexane insoluble, acetone soluble - chloroform Insoluble):
A metal organopyrophosphate similar to GPC #8, differing in that the organo groups are nonylphenyl or cumylphenyl.
FIV (hexane, acetone, chloroform and methanol insolubles):
Inorganics that are high in phosphorus and iron. Probably a mixture of an iron phosphate and iron oxides.
Extraction of the recovered GPC #1 fraction with acetone separated the styrenated rubber from the glycol. The IR spectrum of the glycol showed that it was Ucon's polyoxyalkylene glycol 75-H-350.000, a material foreign to Pydraul formulations. The IR spectrum of the isolated polyglycol ruled out the presence as the main component being Jeffox 0L-2700, the glycol used in Pydraul 29ELT, or Ucon Concentrate 700, a glycol used in other Pydraul formulations.
GPC analysis using a column for high molecular weight separations showed the Republic Steel gel contained components with apparent molecular weights of 20,000 and 7900 (relative to polypropylene glycol calibration standards). New Pydraul 29< contains apparent MW components of 21,000 and 4300. New Pydraul 50E contains no high molecular entities. GPC analysis of knc*rn components confirmed the 20,000 MW peak Is a styrene-polyisobutylene copolymer and the 7900 MW peak is (icon's 75~H-350,000. Table I lists the observed high molecular weight components In the Republic Steel gel and in all the
known materials.
References: IR spectra 75-202 A to E, 75-213 to 219, 75-229 to 235, 75-249 to 258.
ss
Monsanto Industrial Chemicals Co, Applied Sciences St. Louts, Mo.
12/75 - B. Katlafsky, V. J. Lltschgl, M. W. Dietrich
RSV 0010706
figure 1
CONCENTRATED GEL
HEXANE
S-75-SS-36
SOL. FI
INSOL. ACETONE
SOL INSOL.
SOL.
FI
CHLOROFORM
INSOL.
Fill
SOL. NONE
METHANOL
INSOL. FIV
GPC FRACTIONATED
RSV 0010707
S-75-SS-36
TABLE >
CPC OF HIGH MOLECULAR WEIGKT COMPONENTS
Sample Republic Steel Gel
Apparent Molecular Weight
20.000
-
7900
New Pydraul 29ELT
21.000
-
- 4300
New Pydraul 50E
Jeffox 0L-2700
4000
Ucon 75-H-350.000
7900
Ucon Concentrate 700
11,600
Styrene-Polyisobutylene copolymer
19,500
RSV 0010706
J Spectroscopy S-75-SS-37
CHEMICAL I OK IZAT1OH OF ESTERS AND ALCOHOLS
INTRODUCTION
The reason for this study was to Identify a competitor's compressor fluid.
SUMMARY
Sample 1000632-1 seems to be 0
0
0CiaH27 OC1SH27
and sample 1000632*2 from our analysis is 0^
J)
,,C-C7Hi*-
OCj 3H27
OC11H27.
DISCUSSION
The original analysis by NMR revealed the two products to be esters very closely related to ditsodecyl adipate. Due to the high boiling point of these products, GC/MS analysis was impractical. Therefore, the lower boiling methyl esters were formed by hydrolizing the fluids. With the aid of chemical ionization (Cl) mass spectrometry, we were able to obtain
the identification of the fluids given In the summary. Cl mass spectrometry of the esters and alcohols worked well. Some of the Cl spectra of these fluids and C7, C alcohol standards are attached.
Reference:
GC/MS File #75-158 NMR File #16-1059 Analytical Chemistry, Vol. 47, No. 9, Aug. 1975, pg. 1708 Accounts of Chemical Research, Vol. 1, Aug 1967, pg. 48
ss Attachments(5)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
10/75 - L. M. Chapman, G. V. Mappes, M. W. Dietrich
RSV 0010709
S-75-SS-37
OWETHYL AZELATE
OCHm
FPU 21821 SPECTRUM
MASS hBUND
S3 2 cc 2 6 ST 5.1 ss 6 S9 2.2 60 3.8 61 . 6
toT .3 6 . 1 69 2.1 71 4.8 74 11.6 75 1 1
73 .2 81 6 83 2.3 84 . 6 85 4 4 87 1 6 88 . 2 89 2
93 3 9S .? 97 2 5 ieo 3 :e; 6 192 3 10.* 1
214 RET. TIME It 4
107 3 109 8 111 2 9 113 18 115 1 4 117 1
121 2 123 .7 124 3 125 3 4 127 14
135 137 139 140 141 143
149 151 152 155 156 157 158
163 165 167 169 171
6 6 S .1 .7 62
.2 39 18
.9 2 18 2
.1 .2 2 1 1.3
--
183 185 186 187
199
203 215
217 212
231
245 246 257
27 100 0
11 2 12
2
11 3
ii 4 mvJ 54 .7
.2
3 5* +** .3 5- +#*
>PAU$E
----------- -
--
RSV 0010710
S-75-SS-37
DIMETHYL ADIPATE
Ot#s
o
f
o<LH3
PRN 21824 SPECTRUM 49 RET TIME 4 3
MASS
abund
55 4
Sb 1 57 .6 59 4 60 5
173 175
J74-
4 /nw
65
69 . 2 71 2 "4 7 1 75 . 2
S3 .2 S5 4 S? 1
203 204 215
>PAUSE
4.3.4
2.5- 4* /
97 101 102
.5 -- .. 7
1
.
111 112 113 115 116
7.2 4 .4
23 1
129
6
143 144 145
i9e e 70
8
RSV 00107X1
S-75-SS-37
Cl 3 ALCOHOL
CaH,,OM
FPN 21822 SPECTRUM
mass
ss
V7 58 59 66 61
69 71 72 T4 75
A8UND
16 9 84 3
54 94 22 9 16
17 6 106 e
73 69 3
25
81 2 1
S3 27 5 S5 94 1 86 6 4
87 2.7 83 .4
95 97 lee
181
18 34.5
53
32
169
111 113 114
115
24
28 9 38 2
66 54
Si RET TIME 5 6
123 125 127
129
10
16 3 13 5
67
139 140 143 144
2.3
14 58 6
11
153 157
14 26 7
165 167 169 170 171
133 185
16 22 65
8 3.5
7
87
189 199
00
>PAUSE
15 1 .6
RSV 0010712
I S-75-SS-37
C7 ALCOHOL z,h9oh
FRN 21811 5PECTPUT1 259 RET TIHE 16 4
nss 4?
*10 *BUN&
SI
70 14 1 71 13 3 73 2 9
S3 23 2 85 5 2
37 39 101
115
10O 6 94 2 27
8.8 (m-t)
>PftUSE
RSV 001.071.3
C, ALCOHOL c,h,,oh
\
rRN 21811 SPECTRUT1 309 RET TIME 18.7
MASS
xio
A8UND
49 3 98 8 7 57 56 5 59 3 0
67 .9 71 100 0 73 8
31 8 25 71 1 26 4 8
57 5 7 99 7
111 125 143
14 73 3.9 6n-i)
>PAUSE
RSV 0010714
Spectroscopy S-75-SS-38
DETERMINATION OF TRICHLOROETHYLENE (TCE) IN AIR AT ST. PETERS
INTRODUCTION
Air at St. Peters In the De-Composer Units was sampled for TCE. The results obtained indicate worker exposure levels.
SUMMARY
,
TCE was detected in levels of 0.04 to 3.1 ppm. Inadvertently, the first five samples in the table sat for two months before sampling, which may have affected the accuracy of the analytical data.
EXPERIMENTAL
A Chromosorb 105 column was used for collection. A 2 m Tenax column programmed from 0-200C at l6/mln was used for analyses. Multiple Ion detection at masses 95, 130, 132 and 134 was employed for samples I, 2,and 7. Total ion detection with two selected Ions (95 and 130) for san*>1es 3, 4, and 5 provided the means of identification and quantitation as compared to a known standard.
Calculations
Volume of Air
Pump Flow Rate ,, Sampling Time Y lf-s
Sampled (Liters)
(ml/min.)
(min.)
Weight Sample (ug)
Concentration Sample (ug/L)
Area Sample Peak ,, Cone. Std. (yiq/uL) X Vol. Injected (uL)
(counts)
"Area of Standard (counts)
Weight Sample (ug)/Vo1ume of Air Sampled (Liters)
Concentration Sample (ppm)
pg/L (sample)
x
MW.
(samplej
For Sampling #1 Spin Mount Polishing
Volume of Air Sampled
- 53 X 1 X 60 X 10~3 - 3-18 L
Weight Sample (wg)
9177x1 x 1107 X 2.2 217761 X 209657
9C ,
Concentration TCE 25.3 fi A
(ug/L)
jrre- - 8- M/L
(pp)
. B.O X -J35-- 1.5 ppm
References: GC/MS File /75~172
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho.
10/75 - L. M. Chapman, M. W. Dietrich
RSV 0010715
S-75-SS-38
TABLE
SAMPLE
#1 Polishing-Spin Mount 8-28-75
tl Polishing-Spin Mount 9-4-75
#3 Poly De-Composer 9-4-75
#4 Poly De-Composer (east) 9-11-75
#5 West Poly De-Composer- clean up 9-15-75
#7 Worn by John Wagner 9-18-75
TCE (ppm) 1*5 2.1 1.2 0.2 0.04 31
Pump flow - 53 mls/min Sample volume % 3.18 liters Sample time * 1 hour
RSV 0010716
Spectroscopy Special Study S-75-SS-39
DETERM 1 HAT I ON OF CONTAMINANT IN 0X0 ALCOHOL
INTRODUCTION
The reason for this analysis was to check possible contamination In oxo alcohol sent to a customer in Taiwan.
SUMMARY
We found 0.031 dioctylphthalate (DOP) and 0.7% Ci0 hydrocarbon which were not present in a control lot of oxo alcohol.
EXPERIMENTAL
Several different GC columns were investigated in order to separate the 0.7 unknown component from the major alcohols present. A 3 m 0V 17 glass GC column gave the best separation. From the mass spectra, the molecular weight of this component was 142. MS fragmentation indicated it was either a Cjo hydrocarbon, a C, ketone or a C aldehyde. A reaction with nitrophenylhydrazine was carried out to determine If this component was a ketone or aldehyde. No derivative formed under conditions in which a C$ ketone gave a derivative indicating this impurity Is a Cj0 hydrocarbon.
Programming used In the analyses was 50*200 8/min.
References:
GC/HS File #75"168 NMR File #16-1078 "The Systematic Identification of Organic Compounds"
by Shiner, Fusan, Curtin, 4th Ed., pg. 219.
ss
Monsanto industrial Chemicals Co. Applied Sciences St. Louis, Mo.
10/75 - L. M. Chapman, M. W. Dietrich
RSV 00107X7
Spectroscopy Special Study S-75-SS-40
SYNTHETIC FATTY ACID CONTINUOUS PILOT PLANT RADIOTRACER CATALYST STUDY WITH IRIDIUM-192 -- FEASIBILITY INVESTIGATIONS
INTRODUCTION
Ouring 197^-75, the Detergent and Phosphate Division expended considerable research effort toward the development of a continuous synthetic fatty acid plant process. A key factor to the success of the project was satisfactory demonstrat ion of good performance and manageability of the iridium catalyst system in a continuous plant. The catalyst chemistry is complex and its behavior in the process has been, on occasion, baffling. Iridium analytical chemistry has also proved quite difficult contributing to the overall problem of quantifying catalyst characteristics. The possibility of making a better evaluation of the catalyst performance using the gaovna emitting radiolabeled iridium-192 was recognized and discussed in early 1979- The main advantages foreseen were the possibilities of:
1. A simpler more reliable analytical method for determination of catalyst concentration by continuous, insitu external gamma radioactivity monitoring;
2. Much greater convenience in determining whether observed loss of catalyst activity was due to loss of catalyst per se or to other phenomena (poisoning, etc.);
3. The elucidation (when, where, how much, etc.) of the apparent catalyst losses in the process.
SUMMARY
Experimental design estimates were made that indicated useful catalyst analytical sensitivities could be probably obtained in the pilot plant using regulatory exempt (10 microcuries) level of radiolabeled iridium-192 (Table IV). Five millicuries of iridium-192 were obtained from New England Nuclear in April and a series of exploratory evaluations were undertaken to assess technical and safety problems involved In the proposed tracer study. Highlights of the feasibility study include:
Gamma spectral properties of iridium-192 were checked (photopeak energies and Intensities).
Analytical sensitivities were established for continuous gamma monitoring at two pilot plant stages at several iridium concentra tions and In different flow cell designs. (Tables I, V)
Analytical sensitivities were determined for intermittent catalyst monitoring of grab samples for radioaetivlty using either the gamma or beta radioactivity of Iridium-192 (Tables li, Vl).
A suitable explosion proofing cover for the electrical leads of the continuous ganma detector was developed (Figures 2, 3).
Shielding requirement for minimizing radiation background for continuous gamma detectors was explored and two prototype shield designs were fabricated (Figures 2,3)* , c-
/
ftsv 001071a
S-75-SS-^O Page Two
SUMMARY (Cont'd)
Measures were explored for protecting the ganvna detector from heatup from hot flow lines during continuous monitoring (Figures 2. 3).
A'technique was devised for volume calibration of short straight tubular flow cells.
A spiral flow cell for enhanced sensitivity at exempt Iridium-192 concentrations was designed, fabricated and evaluated for sensitivity enhancement at simulated reactor concentration of catalyst (Figure 3* Table V).
Assessment of gamma radiation dosages to personnel from pilot-plant iridium-192 concentrations ranging from 10*100 microcuries were made (Table Ml). Other radiochemical safety measures for contamination protection of personnel and facility were devised.
During the sunvner and fall of 1975, formidible process problems continued to plague pilot plant studies to the extent that no radiotracer experimentation was undertaken. At the end of the year a decision was made to switch from continuous to batch operations. It has not yet been determined whether radioisotope applications will be of continued interest under this modified concept. This report of the experimental design application problems and results obtained in the feasibility study under simulated conditions is believed to have considerable value of a general nature in the application of radioisotopes to pilot plant scale process studies especially in the high pressure laboratory.
CONCLUSIONS* V)
1. Two stages of the pilot plant appeared to be adaptable to continuous gamma monitoring - the reactor and the catalyst return line (Figure 1).
2. The reactor stage requires either greater than exempt quantities of iridium192 and/or use of a larger volume flow cell for insitu continuous monitoring. Limitation of tracer to an exempt quantity (10 microcuries) and use of a short section of 1/A" reactor outlet tubing as flow cell does not permit adequate sensitivity (Table V).
3. The reactor stage can be intermittently monitored insitu at exempt iridium-192 concentrations with sensitivities of \% iridium by use of a larger volume flow cell and scaler counting for at least 10 minutes (Table V) or by taking grab samples of 1-2 ml and counting for 90-100 minutes in a 3" X 3" Nal gairma well detector (Table VI).
k. The catalyst return line with MO,000 ppm catalyst appears feasible for insitu continuous monitoring but requires either higher Iridium tracer concentration or a larger volume flow cell (Tables l V). The monitor region proposed is very crowded and adequate detector shielding against background wfM be a problem requiring possible redesign.
5. The catalyst return line, as with the reactor stage, can be intermittently monitored insitu by scaler counting or by grab samp I ing/gamma well counting (Tables V, VI).
RSV 00107X9
CONCLUSIONS (Cont *d)
S-75-SS-40 Page Three
6. A larger volume flow cell that appears practical in concept for the reactor stage and possibly for the catalyst return line was obtained by construction of a stainless steel tubing spiral that encircles the gamma detector (Figure 3, Table V).
7. Iridium-192 counting efficiency is significantly improved in grab sampling over insitu continuous monitoring (Tables 1, II, V, VI). Gamma counting in the larger NaI well detector is believed more useful than liquid scintillation because of the nearly constant count efficiency as a function of sample volume and its greater freedom from Interferences by sample composition, color, etc. (Tables II, VI).
8. Garrma radiation hazard to pilot plant research workers was estimated to be well below safe recommended levels up to 100 microcuries of iridium-192 (Table III).
DETAILS
The considerable quantity of details is reported only in outline form with page references to the project research notebook.
Topic
Synthetic Fatty Acid Continuous Pilot Plant Schematics and Spedfications
Project Justification/Radiochemical Safety Evaluation/Experimental Oesign
Iridium-192 Radioisotope Shipment Data
Preparation of Experimental Solutions of Iridium 192
Notebook Page
HIC 309101A - 3091026 309156
309I02B - 309107B
309181-86
309108
309112,
309131, 309145, 309152
309120 309135 309147
Determination of lridigm-192 gamma spectrum
309115 - 309H9B 309131, 309165 3091618, 309166B-67
Feasibility studies on insitu continuous gamma monitoring at exempt Iridium-192 levels -simulated catalyst return line of SFA
Feasibility studies on alternative counting equipment for analysis of 11-- 192 radioactivity at exempt level in simulated SFA pilot plant grab samples
309121-2, 309125 309126, 309128 309131-2, 309134 309187B-94A
309123-5. 309127 309129-34 309161-63 309194B-96B
RSV 0010720
DETAILS (Cont'd)
S-75-SS-40 Page Four
Topi c
feasibility studies on insitu continuous gamma monicoring of Iridium-192 at higher than exempt quant i t ics
Notebook Paqe
MIC 309135-6, 309141 309I96C-97A
Calibration of Victorine 440 and Eberline PRH 4-3 portable radiation detectors for Iridium-192 dosimetry measurement
309137-40
Investigation of gamma radiation hazard to personnel from Iridium-192 at levels up to 10 times exempt
309137-40 309197A-98A
Design of shield setup for SFA pilot plant catalyst return line
309144
Determination of lead half thickness values for iridium-192
309149-51B
Determination of "actual" monitor volume of short 3/8" stainless steel tubular flow cells
309147-8
Safety assessment of proposed tracer study by Corporate Safety Department
309169-75
Feasibility studies on simulated continuous monitoring of SFA pilot plant reactor stage using exempt Iridium-192 levels as maximum
309154-5
309157-59 309164-68 3091968-2000
Design and evaluation of spiral flow cell and lead shielding for continuous monitoring of SFA pilot plant reactor stage
309152-3 309166
Project Report - Comprehensive Experimental DetaiIs
30918IA-200D
ACKNOWLEDGMENTS
Assistance of Applied Sciences Instrumentation Group and Research Center Shop for fabrication of lead shielding, flax cells, gamma detector explosion proof adaptor and other miscellaneous hardware is pridefuily acknowledged.
References: Research Notebook Pages 309101A-309200D
5S
Attachments(9)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 12/75 - Charles Eggert, 0. B. Hines, M. V. Dietrich
RSV 0010721
TABLE I. SIMULATED GAMMA MONITORING OF SFA CONTINUOUS PILOT PLANT CATALYST RETURN LINE 2.5" X 3/8" 00 TUBULAR FLOW CELL AND SOLID 2" X 2" NAI DETECTOR
Flow Cel 1-Detector SeparatIon
Distance (CM)
Flow Cel 1 Signal-
(Net CPM)
BackGround (CPM)
lr-192 Count.
Eff. (CPM/DPM)
Satnpl e-toBackground
Ratio
Sens 111vl ty
(As t of Iridium Concentration)
Rate -
Scalar Counting
Meter
(Minutes)
Recording
1 10 60
(10 sec Infea)
A - 9-24 pc! 1r-192/4 liters (exempt concentration)
0 1.4 2.9
0<2>
1873 1276
846 1331
394
428 428 428 428
19
0.132 0.090 0.060 0.094 0.028
4.38 2.98 1.98 3.1 21.1
13.7 17.8 23.7 17.0 26.5
5-6 1.8 0.7 7.3 2.3 0.9 9.7 3.1 1.3 7.0 2.2 0.9 10.7 3.4 1.4
B - 48 pci 1r-192/4 liters
0
9602
437
0.132
21.9
1.4
6127
437
0.084
14.0
2.9
4319
437
0.059
9-9
5.2 2.1 0.7 0.3 6.7 2.6 0.9 0.4 8.1 3.3 l.l 0.4
O'T -S S -S X -S
ftSV 00X 0722
C - 101 pci lr-192/4 1 iters
0
19055
547
0.125
34.8
1.4
11537
547
0.076
21.1
2.9
88o4
547
0.058
16.1
3.6 4.8 5.5
1.5 1.9 2.3
0.5 0.6 0.7
-- --
--
^^Flow cell was wrapped In asbestos Insulation at thickness slikllar to that used In SFA Pilot Plant.
(2)
'A narrow window count of the major lr-192 photopeak was "wde for comparison.
TABLE II. ANALYTICAL SENSITIVITY PR0VI0ED BY VARIOUS COUNT OPTIONS ON GRAB SAMPLES AT THE EXEMPT LEVEL OF IRIOIUM-192
Count Technique
Sample Size (ml)
RIDL Single Channel Analyzer, Manuel Semple Changer, 2" X 2" Well NAI Detector In 2" Lead Shield
0.5 1.0 2.0 5.0 10.0
Sample Net CPM
Background CPM
636 1366 2855 7318 IW?
137 137 137 137 137
Count Efficiency
(CPM/0PM)
0.269 0.266
0.277 0.286 0.286
Sample-toBackground
Ratio
6.6 10. 21 .
53. 106.
Sensitivity (As t of Iridium concentration)
Count Time. Min 1 10
9.5
3-0 1.2*'*
6.0 1.9 0.8*1*
3.9 1.2 0.5*'*
2.6
0.8
0.3(,J
1.7 0.5 0.2 ^3
Packard Liquid Sclnt11 let Ion Spectrometer Model 336$, Automatic Sample Changer, Low Potassium Glass Count Vial, Packard Instagel Count Cocktail
0.5 1.0 5.0 10.0
1165 2381 11536 21303
21
0.667
56.
21
0.666
112.
21
0.651
563.
21
0.615
1003.
6.0 1.9 0.6(2* 6.1 1.3 oV2* 1.9 0.6 0.2(3J 1.6 0.6 0.2^
06-SS-SZ-S
RSV 0 0 1 0 7 2 3
^60 minute counting ^100 minute counting
^Counting ^78 min (900,000 count limit) ^Counting ^62 min (900,000 count limit)
S-75-SS-40
TABLE III.
GAMMA RADIATION DOSAGES FROM A SIMULATED SFA PILOT PLANT STAGE CONTAINING HIGHER THAN EXEMPT LEVELS OF IRIDIUM*192
lr-192 Dosage, 4 Liter Surface Container
(mr/hr)
Cont ined lr-!9<
10 uci
48 uci
101 uci
Allowed Garnna Dosage, NRC Regulations Title 10, Part 20, Par 20.101 (calculated mr/hr)
Whole Body Head and Trunk Active Blood Forming
Organs Lens of Eye Gonads
Hands and Forearms
Skin of Whole Body
Less than 0. 1
0.25
MJ.45
2.4
36.1
14.4
RSV 0010724
S-75-SS-40
TABLE IV.
SYNTHETIC TATTY AC 10 PILOT PLANT SPECIFICATIONS PERTINENT TO CATALYST TRACER STUDY
Process Stage
Stage Fluid Capacity
Ml Grams
Iridium Catalyst
Distribution
Grams
Ppm
1ridium-192 Distribution (10 pci total) pci dpm/ml
Est. Transit
Time (Hours)
Reactor
4285
3000
6.00
^2000 1.42
736
*1 .25
Distil 1 at ton/ Catalyst Recov.
2344
1875
3.75
^2000 0.89
843
*0.75
Catalyst Return System
Tota1s
3785
3243 32.43
*10000 7.69
4510
*7.33
10414
42.18
-- 10.00
--
9-33
RSV 0010725
TABLE V . SIMULATED GAMMA MONITORING(WITH VARIOUS FLOW CELL OPTIONS)OF SFA CONTINUOUS PILOT PLANT REACTOR AND CATALYST RETURN LIN E AT EQUILIBRATION OF 10 MICROCURIES OF IR -1 9 2
P ilo t
P la n t
Stage
Reactor
Type
Flow DPM lr - 1 9 2 F low C e ll
lr-1 9 2
C ell
In Flow S ig nal 0 )
Back- C ount.
S e n s itiv ity S am ple-to- (As % o f Irid ib m C o n c e n tra tio n )
F lo w
C ell
V o lu m e (m l)
C ell
(O P H /m l)
(N e t CPM)
Ground
(CPU)
E ff.
(CPM/DPM)
Background
Rat lo
R ateM eter
S calar Count
v0O --xC
0e *" X
Record
1
10 Sec In te g H ln
CsSoOO
O
IA " 00/ss
N Ok
f*-k -- O
CD CD fb ^ . -
ia ~ IV --Uk
-- nk kA O -- rm- --
i*k y-- -- f*k
NN fI*A*> 0N0
OOOO
^ rk
.. N--
Ok o\
e.--ao- ceegoo a-ao- ---i*rk CM --
C--O
n
A VO
CfcAokQ--rO-
Ok. IA. tb C4
3 /8 " OD/SS
mn <T k/>
kA IA Uk
0j^--n
O kA
N
00 --
C a ta lyst
R e tu rn L in e
1/4" S p ira l
SS
3 /8 " OD/SS
PNA
o>
NOkNfA
*
-- b
eV 2Q aM
(A t--
IA *0
t>
bU0
--e "Mvo
41 b in
4-< O -O
4) a -- avu
S-75-SS-40
4C) o>
c
by
<e wi *3
z +* 19
c if
n i"
4> **-
x b3 o
1 V) 31
n vig --c
*D E --y -- k_ 19 O O *>
(A V*
c >
10 .0 u jz
4)
-- "O ** -- 4) O
4U) f3t 3b
S M <A
i55
**- y
kb J IA
-3 S
S *i -o
c--
<B b 4) b C --
-<On 3nZ* 3 y m gtS ~ge
SlJ *--
a. c
4> C (A< <
oke3n-
RSV 0010726
TABLE VI. ANALYTICAL CRAB SAMPLE SENSITIVITY PROVIDED BY PACKARD AUTO GAMMA (TANDEM MODEL 3365)^
Pilot Plant Staqe Reactor
Catalyst Return Line
Sample Size (ml)
1 2 3 5
1 2 3 5
Samp1e Net CPM
372 752 1083 1826
2364 4677 6889 11107
BackGround
CPM
100 180 180 180
180 180 180 180
Count Efficiency
(cpm/dpm)
0.518 0.528 0.503 0.509
0.517 0.511 0.502 0.486
Samp 1 e-toBackground
Ratio
2.1 4.2 6.0 10.1
13.1 26.0 38.3 61.7
Sensitivity (A$ t of Iridium Concentration)
Count Time. Min. 1 0 $6 100
14.6 4.6 2.1
1.5
8.9 2.8 1.3 0.9
7.0 2.2 0.9 0.7
5.2 1.6 0-7 0.5
4.4 1.4 0.6
3.0 1.0
--
2.5 0.8 -- ---
1-9 0.6 -- ---
0Y SS-5^-S"
RSV 0 0 1 0 7 2 7
0) Catalyst In simulated reactor and catalyst return samples at equilibrium distribution of 10 pCI lr-192.
I S-75-SS-JiO u "33 --T3 oI- <o
I
f
I
RSV 0010726
I .FIGURE
SYNTHETIC FATTY ACID CONTINUOUS PILOT PLANT SCHEMATIC (PR 702*4-K2)
0
OaU
1 cc
.
o
<O_>
4-
O lef.
o
<
S-75-SS-^O FIGURE 2.
LEAD SHIELDED GAMHA DETECTOR PROPOSED FOR CONTINUOUS MONITORING OF RADIOACTIVE IRIDIUM CATALYST RETURN LINE
RSV 0010729
FIGURE 3. SHIELD SCHEMATIC FOR SPIRAL FLOW CELL CONTINUOUS MONITORING OF SFA CONTINUOUS PILOT PLANT REACTOR (Scale, I dlv - I11)
ini v((AAin
o
Inner shield machined to
hold the Detector
at reproducible geometry
RSV 0010730
SFA Reactor Effluent'y-
Colls of Spiral 1A 00 SS Flow Cell 3" ID coll
3 1/2" 0D coll wrapped with Insulation tape to reduce
transfer to Detector
Set collar to effect reproducible geometry
H.V. Lead
^-Pre Amp Output
C. Schematic of Shield with Detector In monitoring position
of Spiral Flow Cel I
Can assembly for N? Purge for Explosion Profrlng Detector High Voltage Connections
Note
2 essentially Identical shield assemblles required:
(1) Houses Spiral Flow Cel 1 from SFA Reactor
(2) Side-by-side of first shield to measure an lr-192 std. In an Identical spiral cell, measure BKE and checking of electronics lab of detector
Spectroscopy Special Study S-75-SS-4I
SYNTHESIS, ANALYTICAL CHARACTERIZATION AND PREPARATION OF FPA TEST COATINGS OF MODAFLOW1*^
INTRODUCTION
Monsanto Modaflow is an ethyl acrylate-2 ethylhexyl acrylate copolymer of MO,000 Mol. Wt. that is added to various resin systems such as acrylic and epoxy to produce better quality coatings. One potential application is the inside coating of metal containers targeted for the soft drink and alcoholic beverage industry. Acceptability for this application normally requires either demonstration of low extractabiUty of product into the appropriate solvent system(s) using standard FDA extraction procedure or a feeding study in case of excessive extractabi1ity. Previous extractabi1ity testing of coatings containing Modaflow gave questionable results because of inter ference in the infrared spectroscopic measurement of Modaflow. This work was carried out using resins containing Carbon-|l labeled Modaflow to provide the necessary improvement in sensitivity and specificity.
SUMMARY
Approximately 190 grams of low specific activity Modaflowl4C was prepared from ethyl acrylate11^ raw material. This material was analyzed by a series of tests (Table I) and shown to have physical properties typical of plant material and to have adequate radioactivity concentration to provide the needed analytical sensitivity. The labeled Modaflow was incorporated into acrylic and epoxy resin formulations and used to prepare radioactive coatings onto special release paper. Solution/slurry coating techniques were used for radiochemical safety reasons instead of the normal dry powder electro static spray method. FDA extractions on the coated sheets were subsequently carried out as described in Special Study AC-75-SS-13 (Reference 1).
EXPERIMENTAL
Design of Experiment
Calculations showed that a labeled product with a relatively low specific activity (3~4 microcuries/gram) provided Modaflow detectability below 1 ppm with normal sample sizes, counting efficiencies and sample analysis times. This specific activity level appeared readily obtainable with M millicurie of radioactive raw material.
Raw Material/Solvents
Modaflow is prepared by reacting ethyl acrylate and ethylhexyl acrylate (30/70 weight ratio) in a kerosene solvent. The extent of polymerization is controlled by sequential addition of benzoyl peroxide catalyst. Progress is followed by refractive index measurement. Modaflow Is isolated after stripping off kerosene solvent by vacuum distillation. Ethyl acrylate^C was purchased from American Radiochemical Corporation, Sanford, Florida. Due to its extreme susceptabi1ity to polymerization the ethyl acrylate1%C was synthesized {(mediately before our use. The supplier prepared the material, stabilized it with 1000 ppm hydroquinone (the standard agent and level used in plant raw material) and shipped it to Monsanto frozen In dry Ice for next-day use.
RSV 0010731
S-75-SS-41 Page Two
EXPERIMENTAL
Raw Haterial/Solvents (Cont'd)
All the non-labeled raw materials and Penneco kerosene solvent were current Nitro, W. Va. plant stocks.
Synthesis
After the demonstration practice run the solvent stripping procedure following the reaction was modified by (1) the addition of a short, heated column replacing the gooseneck take-over joint and (2) use of a dry Ice bath on the receiver. The labeled synthesis produced 187 g product corresponding to a yield of $&% relative to ethyl acrylate. Of this 187 grams, 83fc was recovered as neat ModaflowlJ*C and 13* recovered as a solution In kerosene.
Analytical Characterization
The labeled Modaflow was characterized by refractive index, viscosity, molecular weight by GPC and specific activity determination.
Refractive Index
Two refractive index criteria were met:
1. Modaflow polymerization range was controlled by refractive Index (Rl) measurements on the crude reaction mass. The synthesis procedure allowed a Rl range of 1.A460-1.AA80 at 25C. These values were reported to be the uncorrected range normally found relative to the Nitro Plant Bausch and Lomb refractometer. We obtained a comparable Instrument and constant temperature bath on site and calibrated It over the desired Rl range relative to Cargille Rl standards. The corrected refractive index of the labeled crude obtained at reaction endpoint was 1.AA8 +0.0002 at 25C.
2. The second refractive index specification was I.L130-1.k190 at 25C for a kOfc solution of Hodaflowl4*C in 2,2,4-trimethy1 pentane (isoctane). The corrected value obtained on labeled Modafiow was 1.416 +0.0002.
Viscosity
The Modaflow viscosity range in Saybolt Furol Seconds (SFS) is specified to be 650-1650 at 210F. The vtscosity of labeled Modaflow and a Nitro plant produetlorv lot were determined by Ostwald Kinematic Method at 100 and I25*C and calculated as SFS at n2IOF according to ASTM Method D-2161-63T. The SFS values found were 965 and 885 respectively for the two products, placing them well within specifications.
Molecular Weight Measurement by CPC
Gel permeation chromatography was used to determine the peak molecular weight of Modaflow. The instrument used was a Waters Associates ALC-100 equipped with pStyragel columns (Waters Associates) and an R-li00 differential refractometer (Waters Associates). The battery of columns used consisted of 102A, 5 X I02A, I03A* , 10"A, 10SA and 10*A. UV grade tetrahydrofuran (THF) was
RSV 0010732
S-75-SS-41 Page Three
EXPERIMENTAL
Molecular Weight Measurement by GPC (Cont'd)
chosen as the eluting solvent at a flow rate of 1 ml per minute. The sample concentratIon was approximately 2 parts THF and I part Modaflow. A 20 ul portion of this sample was then chromatographed. The peak molecular weight versus polypropylene glycol standards was 9600.
Specific Activity Determination
The experimental design provided for a minimum specific activity of 3*6 microcuries per gram based on the use of one mllllcurte raw material to produce a 278 gram batch. Actual synthesis scale proved to be 195 9 (theory) and American's radioisotope shipment specified 1.25 mtllicuries. A specific activity, therefore, of ^.7 microcuries per gram was expected. Specific activity determination was carried out on a xylene stock solution of labeled Modaflow diluted 100 to 1 with cold Modaflow to reduce glass surface adsorptive effects. Radioactivity was measured by liquid scintil lation counting using internal standardization. An experimental value of 4.53 microcuries per gram was obtained. The discrepancy between theory and experimental specific activities has been attributed to the delivery of less than the specified amount of labeled raw material.
Preparation of Hodaf iow^C/Rcs in Coatings for FDA Extraction Studies
The conventional electrostatic spraying method used to produce coatings containing Modaflow presented a substantial problem for radiochemical safety. This conventional method consists of several steps likely to produce airborne radioactive powders.
An alternative procedure to produce coatings using safer solution/slurry techniques was developed by the Plasticizer application group (Reference 3). Twenty-four sheets of acrylic and epoxy type coatings were prepared on release paper. In spite of considerable care, occasional small "holes" in the coatings were observed where film had not covered the paper. These holes were patched by addition of a drop of slurry to the area before curing.
References:
1. Analytical Chemistry Group Special Study AC-75"SS-13, "FDA Extractions of Resin Coatings Containing C-14 Radiolabeled Modaflow."2 3 4
2. R. G. Raley's memo of 7-22-75 to D. Hines and R. Radue, "Status of C^-labelad Modaflow for FDA Extractions."
3. S. F. Joyce's memo of 9-2-75 to P. R. Graham, "ModafIcw-FDA Panels."
4. Research Notebook pages MIC 1,001,101-1,001,173.
ss Attachment Monsanto Industrial Chemicals Co. Applled Sciences St. Louis, Mo. 12/75 -0. 8. Hines, A. R. Atkinson, J. W. Htrzy, W. J. Lltschgl, H. W. Luebke,
H. Yepez, $. Joyce, M. Y. Dietrich
RSV 0010733
S-75-SS-41
TABLE I
SPECIFICATION VERSUS MEASURED PROPERTIES OF PLANT AND RADIOACTIVE MODAFLOW
Test
Specification
Lot 817-78, QC-3*3
NB-08-007
Hodaf low1 **C
Refractive Index @25C of Reaction Hass Crude
1.4460 - 1.4880
1.486 + 0.0002
Refractive Index g25C of 40% Hodaflow in 2,2,4-trimethyl pentane
1.4130 - 1.4190
1.4170 (Plant Analysis)
1.416 + 0.0002
Viscosity, SFS at 210F
650 - 1650
885
964
Peak Holecular Weight by GPC
-----
9600
9600
Specific Activity mic rocu ries/gram
4.53
RSV 0010734
Spectroscopy S-75-SS-42
DETERMINATION OF AROCLOR 1016 IN AIR AT ELECTRIC UTILITIES COMPANY, LASALLE, ILLINOIS
INTRODUCTION
The objective of this analysis was to determine levels of polychloro biphenyls (PCBs) in the plant air of Electric Utilities Company.
SUMMARY
The results are attached. The values detected ranged from 0.2 to 2.3 yg/1.
EXPERIMENTAL
Tenax was used for collection of the PCBs and a glass 0V 17 was used for the analyses. Identification and quantitation was made with known standards. The calculations are shown below.
Calculations
Volume of Air
_ Pump Plow Rate Y Sampling Time y .--3
Sampled (Liters)
(ml/min.)
(min.)
Weight Sample (pg)
Concentration Sample (ug/L)
_ Area Sample Peak ,, Cone. Std. (ug/ L) X Vol Injected (pL)
(counts)
Area of Standard (counts)
Weight Sample (ug/L)/Volume of Air Sampled (Liters)
For Sampling #1 Plugging Area
Volume of Air
- 88 X 115 min. X 10"3 - 10.12 liters
Sampled (Liters)
Weight Sample (ug)
- 3058*f X 2.*7 X 3.7 - 17.02 ug TPTT3
Concentration (ug/L)
- T37TT " K68 pg/1 % 1,7 119/1
References GC/MS File #75-202
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Missouri
11/75 - L. M. Chapman, M. W. Dietrich
RSV 0010735
S-75-SS-42
Location Plugging Area 0\
TABLE
Plugging Area 02
Press Department #3 Assembly Department 0k
Impregnation Department #5 Winding Room #6
Plant Manager's Office 01
Standard 18
Aroclor 1016 1.7 Mg/1 2.3 ug/1 0.4 Mg/1 0.5 Mg/1 0.7 Mg/1 0.2 pg/1 ND < 0.1 NO < 0.1
Pump flow
86 ml/min.
Samp!ing time 1-5 hrs.
Sample volume 5-30 liters
RSV 00L0736
Spectroscopy S-75-SS-43
DETERMINATION OF THE LEVELS OF TRIETHYLAMINE AND BUTANOL IN AIR AT THE DELAWARE RIVER PLANT
INTRODUCTION
This Investigation was undertaken to determine worker exposure levels to triethyI amine (TEA) and butanol. Samples were taken in and around the Santlclzer 160 manufacturing structure.
SUMMARY
Results are attached. Triethylamine was detected in levels ranging from 0.4 to 44.8 ppm. The levels of butanol detected were 0.1 to 2.8 ppm. Some values of the triethylamine analyses may be high due to interference by other components.
EXPERIMENTAL
The analytical column used was a 2 meter glass Tenax and collection columns were packed with Chromosorb 103. In identifying and quantitating the samples* knowns were used. Ions 74, 59* 86 and 101 were scanned with the total ion scan in order to get better resolution and identification of butanol and TEA.
Calculations
Volume of Air m Pump Flow Rate v Sampling Time - .Q-j
Sampled (Liters)
(ml/min.)
(min.)
Weight Sample (ug)
Area Sample Peak Cone. Std. (pg/uL) X Vol. Injected (uL)
(counts)
Area of Standard (counts)
Concentration Sample (pg/L)
Weight Sample (pg/L)/Volume of Air Sampled (Liters) For Sampling 75*1 Triethylamino
Volume of Air . 36.8 X 11 X 10~s - 0.4048 liters Sampled (Liters)
Weight Sample (Ug)
4226202 X 6.76 X 3.2 -l 1220429 'W9
Concentration (yg/L)
74.9 _ -0l5r ,8S-",S/I
Concentration (ppm)
. ]g ,
_ w.g 101
References: &C/MS File #75~200
ss
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Missouri
11/75 - L. M. Chapman, M. W. Dietrich
> tN c
RSV 0010737
S-75-SS-43
SAMPLE 75-11 75-10 75-4 75-5 75-1 75-12 75-3 75-8 75-7 75-6
TABLE
BUTANOL (ppm) 2.8
TRIETHYLAMINE (pi 0.4
0.3 none detected
0.5 0.5
0.9 0.7
2.5 44.8
1.2 4.0
0.8
2.6
1.8 1.2
0.1 1-5
lost in analysis
These values may be high due to other component interference.
Pump used -- SKC 222-451 Volume sampled --> 0.5*2 liters Flow rate --> 28-37 ml/mtn Sampling time ---> 10-80 minutes
RSV 0010738
Spectroscopy S-75-SS-45
DETERMINATION OF MALEIC ANHYDRIDE AND STYRENE IN AIR AT EVERETT, MASSACHUSETTS
INTRODUCTION
This study was undertaken to measure worker exposure tevels to maleic anhydride and styrene in air.
SUMMARY
Two samples contained 0.2 ppm maleic anhydride and 0.1 ppm styrene. One sample overloaded the system and is probably well over the TLV for both materials. Further details are given In the table.
EXPERIMENTAL
GC separation was made on a S-409 analytical column with identification by GC/MS. Besides scanning the total tons, ions 26, 54, 104 and 103 were also monitored selectively to verify the presence of these components.
Calculations
Volume of Air m Pump Flow Rate ^ Sampling Time m"*
Sampled (Liters)
(ml/mln.)
(min,)
0
Weight Sample (yg)
* Area Sample Peak ,, Cone. Std. (yg/uL) X Vol. Injected (uL)
(counts)
Area of Standard (counts)
Concentration Sample (yg/L)
* Weight Sample (yg/l)/Vo1ume of Air Sampled (Liters)
Concentration Sample yg/L (sample) X (ppm)
24.45 --(sample)
For Sampling Maleic Anhydride 75*60
Volume of Air Sampled
Weight Sample (vg)
Concentration (yg/L)
* 46 ml/mln. X 110 mln.X 10~* * 5.06
- 1.327.660 X
3 - 3.95
Concentration - 0.78 X (ppm)
- 0.195 % 0.2 ppm
ss
References: GC/MS file #75*221
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
12/75 : L. M. Chapman, M. W. Dietrich
RSV 0010739
Sample
75-60 North side of
#5 Press
75-31 Bag filling
Operation
* 75-35 Between #5 and
#6 Press
75-25 South side
#6 Press
S-75-SS-45
TABLE
Maleic Anhydride (ppm) 0.2
Styrene (ppm) 0.1
0.2 0.1
>10 >20
lost in analyses
* These values are estimates because this sample overloaded the system.
/
/
RSV 0010740
Spectroscopy Special Study S-75-S5-47
SYNTHESIS, CHARACTER 12AT I ON AND PURIFICATION OF S-334FHl<tC
INTRODUCTION
Interest has continued within Monsanto for the development of a polymeric polyester plasticizer to replace DOP in the blood storage bag industry. Continued use of OOP has been questioned by certain medical research workers for several years because of its known extractabi1ity into blood during storage and Its suspected adverse effects upon transfusion recipients. Monsanto's initial efforts produced Santicizer 334F, a polymer of about 2000 molecular weight, the reaction product of adipic acid and 1,3-butylene glycol. Human blood extractab11 Ity of the S-334F was determined in 1972-3 by Monsanto research workers using a carbon-14 labeled form of the product synthesized within Monsanto for this work (References 1,2). The Monsanto study showed that the extractabi1ity reduction differential of S-334F over DOP was not as great as had been anticipated. Research continued toward S-334F modificaton to further reduce extractabi11ty. By late 1973, S-334FM had been produced by acetylation of the S-334F hydroxyl end groups. The modified product exhibited significantly reduced water extractabi1ity compared to S-33^F, One of Monsanto's customers, Baxter Travenol Laboratories, requested a radiotsotopical1y labeled form of the modified product for research purposes. This request initiated this project for synthesis and analytical characterization of S-33AFM1`*C (Reference 3).
SUMMARY
Monsanto agreed to provide Baxter Travenol Laboratories (BTL) with S-SS^FM^C in which the adipic acid part of the molecule was labeled.
S-33^FMl,*C was prepared by acetylating the residual stock of S-334F 1 **C.
S-334FM1"C was analytically characterized by radiochemical assay, radiochemical purity, molecular weight distribution by gel permeation chromatography and product Identity confirmation by IR.
Part of the S-334FM14C was purified by preparative scale gel permeation chromatography to remove a low molecular weight radioactive impurity discovered in the GPC radiochemical purity analysis.
Baxter Travenol Laboratories were supplied with 0.75 miliicuries of GPC purified S-33*)FM1<*C as requested.
DETAILS
1. Acetylation of the entire existing stock of S-334F i4C produced an estimated 2.3 gram of S-BS^FK^C having a specific activity of 4.97 miliicuries per gram.
2. The analytical properties of the S-33^FM1%C were considered acceptable
with the exception of low molecular weight radiochemical impurity as determined by gel permeation chromatography (GPC). This impurity, estimated at
M).4i, if totally extracted Into blood from 5-33*FM plasticized polyvinyl
chloride film, represents 1/3 of the total radioactivity previously
extracted from the original
plasticized PVC film in 30 days
at 5C.
RSV 0010741
DETAILS (Cont`d)
S-75"$S"47 Page Two
3. Waters GPC unit, model 301 equipped with y styragel column proved adaptable without modification for making preparative scale purification of
up to D.3 gram samples of the S-334FH,4C.
4. The"low molecular weight radiocative impurity was shown to be absent in CPC purified S-334FM1"C.
EXPERIMENTAL DETAILS
The details of the synthesis, characterization and purification of S-334Fm14C
are found in MIC Research Notebook pages 296101-296161 (Reference 4). An outline of this work with notebook page references follows:
Topic
Miscellaneous Backgroundoutlining the origin and early planning of project
Synthesis Practice Runs
Labeled Synthesis, Decolonization, Sol vent Dilution
MIC Notebook Page No. 296101-5
296I06A-7B 296108A-9
Analytical Characterization Radiochemical Assay Hoi Wt by GPC (Kenyon) Mol Wt by GPC (Litschgi) Radiochemical Purity (by GPC)
IR - samp1e iso1 ation Sumnary Table
Inventory Information
GPC Purification of S-334FMl**C destined for Baxter Travenol Laboratories
296109A-31A 2961 IIA-12A 296113A-148 296115A-24 296I25A-29B 296132A-B 296130A 29613iA
296133
296134-41B
Quotation on 1,3 butylene glycol ll*C raw material for alternative labeled S-334FH synthesis
296142A-3
Technical Information on S-334F/S-334FH for trip to Baxter Travenol Laboratories
296144A-49B
GPC Preparative Scale Purification of additional stock of S-334FMl4C
296I50A-60
References
I Spectroscopy Special Study 74-36 "Synthesis and Characterization of Santlcizar 334Fl*C".
.2 Spectroscopy Special Study 74-37 "Human Blood Extraction Studies of
PVC Films Containing Labeled Santicizer 334F".
RSV 00107^2
References (Cont'd)
S-75-SS-47
Rage Three
3 P. R. Graham's Commercial Development Call Report No. 74*7. Baxter Travenol Laboratories, 2*14*74.
4. MIC Research Notebook pages 296101*60.
is Attachment Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 12/75 " D. B. Hines, J. W. Hirzy, W. J. Utschgi, H. Yepez, M. V. Dietrich
RSV 0010743
S-75-SS-47 TABLE 1 ANALYTICAL CHARACTER!ZATION OF S-33AFH1"C
Property
Specific Activity
Peak Hoi Ut (GPC)
Radioactive Impurities (Hoi Wt less than 300)
IR
S-33AFH1 **C A.97 mci/gm
2700 ^ O.At
Yes1
Plant S-33AFM dtd 1-9-7A
--
3000
--
Yes
1 IR trace agreed acceptably with plant sample except labeled material still contained a small amount of solvent benzene.
RSV 00X0744
Spectroscopy Special Study S-75-SS-A8
SYNTHESIS OF FIVE RADIOLABELED (P-32) FOOD PHOSPHATE SALTS
INTRODUCTION
Synthetic linear and cyclic polymeric phosphate salts are commonly employed as food additives because of the desirable qualities they can impart to foods. These food additives, as we 11 as many others, are currently on the Food and Drug Administration's (FDA) "generally regarded as safe" list. The FDA is now soliciting and reviewing all old and new scientific data that will help reestablish the safety of these food additives.
In order to provide up-to-date definitive data on the metabolic fate and behavior of this class of compounds, when orally ingested, a rat metabolism study is being conducted on contract at the University of Tennessee. Radiolabeled P-32 food phosphate salts were prepared, by Honsanto Applied Sciences, so that the rat study could be performed.
SUHMARY
Radiolabeled monosodium (P-32) phosphate (ortho) was purchased and used to successfully prepare five representative food phosphate salts. The salts prepared were the tripoly, trimeta, tetrameta, hexameta and insoluble meta. After preparation each salt was radiochemically characterized, properly packaged and shipped to the University of Tennessee for use in the contracted rat metabolism study.
DETAILS
A preliminary rat metabolism study was carried out with the ortho, tripoly and trimeta phosphate salts. This study involved dosing (stomach tube) two rats per salt, which had been fed diets containing the respective cold phosphate salts at the Q.\% level for 1A days, with 1.0 milliliter of the P-32 labeled salts containing 25 mg of phosphorus per milliliter with a specific activity in the range of 100-200 yCi/ml. The rats were placed in metabolism cages and fed the same diets and water ad libitum. Periodic fecal and urine collections were made and at the end of 72 hours the rats were sacrificed and liver, kidney, fat (mesenteric) and bone (tibia) samples taken. All samples were analyzed for total activity and the fecal and urine samples characterized chromatographically. A second in depth study was then performed with all six food phosphate salts using ten animals per salt. The ortho, tripoly end trimeta salts were therefore prepared twice and the tetrameta, hexameta and insoluble meat salts once. The details and results of these rat metabolism studies will be published elsewhere
Ortho: Carrier free monosodium phosphate: NaH2 ,2P0 in water, 10 mCi/ml, spec]fic activity 500 mCi/mm, redionuclIdle purity >99t, was purchased in 5 mCi packages from New England Nuclear (Catalog No. NEX-063). The ortho salt solution was prepared by syringe addition of an appropriate volume of the P-32 salt to a cold monosodium phosphate solution. After mixing 1.25 ml aliquots were transferred to septum vials and the vials sealed.
Trimeta: The appropriate volumes of the P-32 salt and cold monosodium salt solutions were combined in e platinum crucible. After careful mixing the solution was taken to dryness by placing the crucible In a 110C oven overnight
RSV 0010745
,1 c c t
DETAILS
5-75-S5-W Page Two
Trimeta: (Cont'd)
The monosodium salt was then converted to trimeta by calcining it for two hours irr a Ruffle furnace at 550C. The trimeta salt was then removed from the furnace, allowed to cool to room temperature and redissolved in a measured volume of distilled water. Aliquots of this solution (1.25 ml) were then transferred to septum vials and the vials sealed.
Tripoly: The tripoly salt is made from a 2:1 aqueous solution of di* and monosodium phosphate, which must be flask dried to prevent selective crystal growth, prior to calcining.
In order to do this safely and quantitatively the apparatus shown in Figure 1 was used. The appropriate volumes of the radioactive and cold salt solutions were combined In the feed reservoir and mixed by swirling. The apparatus was then attached to the scrubber train and the nitrogen purge started. The stopcock was then opened to allow the feed solution to slowly drip into the drying vessel. After washing the feed reservoir twice with distilled water, the apparatus was removed from the oil bath, wiped ciean and placed in a k50C muffle furnace for two hours.
Once it had cooled to room temperature, the tripoly salt was dissolved in a measured volume of distilled water and transferred to a beaker. Solids which were present were removed by placing a Mi 111 pore Hillex filter unit between the syringe and needle used to transfer the 1.25 ml aliquots to the septum vials.
Tetrameta: The tetrameta salt was prepared by combining appropriate volumes of the P-32 salt solution and a solution containing equal molar amounts of cold monosodium phosphate and phosphoric acid in a pyrex beaker followed by evaporation to dryness overnight in a 110C oven. The dried salt was then calcined in a muffle furnace at 325C for 2k hours, removed from the oven and a few seed crystals of cold tetrameta stirred in with a glass rod. The salt was then replaced in the furnace at 325C for another 2k hours. Vhen cool, the tetrameta salt was redissolved in a measured volume of distilled water and 1.25 ml aliquots transferred into septum vials using a Millipore Hillex fitter and syringe to remove solids.
Hexame ta:
The appropriate amounts of the P-32 salt solution and a 9/1 cold monosodium dlsodlum phosphate salt solution were combined and mixed in a platinum crucible and the water evaporated by placing it in a 110C oven overnight. The salt was then calcined In a muffle furnace at 750C for 20 minutes, removed from the muffle and quickly cooled to room temperature by placing the crucible on a cold ceramic plate. The hexameta salt was then dissolved In a measured volume of distilled water and 1.25 ml aliquots transferred to septum vials using a disposable syringe and Millipore Hillex filter to
remove solids.
Insoluble Meta: The appropriate amounts of the cold and radiolabeled monosodium phosphate solutions were combined, mixed in a porcelain mortar and the water evaporated by placing it In a 1I0C oven overnight. The salt was then calcined in a muffle furnace at 350C for 2 hours, removed from the
RSV 0010746
DETAILS
S-7S-S$-<B Page Three
Insoluble Meta: (Cont'd)
furnace and allowed to coo) to room temperature. The mortar was placed in a plastic glove bag, the salt ground with a pestle and 0.08 gram portions of the powdered salt loaded into #5 gelatin capsules. Each capsule was then placed in a 2 dram screw cap vial prior to removal from the glove bag.
RADIOCHEMICAL ASSAY AND PURITY
The specific activity and purity of each salt was determined via liquid scintillation spectrometry.
Assay
Each salt solution was diluted gravimetrically with distilled water such that a five ml aliquot of the final dilution had a count rate in the range of 15*000*25,000 CPH. Four 5 ml aliquots of each diluted salt solution were transferred to tarred glass liquid scintillation counting vials. The vials were then reweighed and the sample weights recorded. Two of each set of
four vials contained a weighed amount of a certified aqueous P-32 standard (New England Nuclear, NEX0175). Fifteen ml of Insta-Gel LSC coctail (Packard Instrument Co.* cat. #8002177) were added to each vial and the vials were equilibrated in the counter at 10C prior to counting.
The samples were counted with a Mark III Liquid Scintillation Spectrometer
(Searle Analytic* Inc. Model 6880) using the preset Isotope quench corrected program k (P-32) mode. Counting efficiencies were In all cases found to be in the range of 97"99fc as determined via the internal standardization method.
The insoluble meta phosphate salt had to be initially solubilized by heating with phosphoric acid. Once solubilized it was assayed In the same manner as the soluble salts.
Radiochemical Purity
License free amounts of each salt were submitted to Industrial Testing Laboratories for separation by paper chromatography. Each sample was spotted in duplicate developed and one-half visualized to aid location of the unvisuaiized components. The radioactive spots on unvisualized paper chromatograms were then cut out and extracted with 10 ml of distilled water. Five ml aliquots of these extracts were then analyzed In the same manner as the soluble salts. The radiochemical purity of the insoluble
meta salt was not determined.
DATA The analytical data for the phosphate salts are shown In Tables l-lll.
RADIATION SAFETY SUMMARY
All labeled syntheses were proceeded by successful completion of an equivalent synthesis with unlabeled starting materials and a complete review by the Radiation Safety Committee. The syntheses were performed In the hood In the hot laboratory and were continuously monitored with a VIctorean Model AA0
RSV 0010747
RADIATION SAFETY SUMMARY (Cont'd)
S-75-SS-48
Page Four
Survey Heter and an Eberline Mode I DRM-k Rate Pulse Meter. All personnel were equipped with film badges and protective clothing. Laboratory air and hood air were also sampled and checked for radiation.
In no case were any personnel exposed to radiation levels that exceeded NRC regulations.
ss Attachments(4)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
12/75 - E. S. Tucker, H. W. Dietrich
RSV 0010748
S-75-SS-48
TABLE I SPECIFIC ACTIVITY AMU PUKtTV OF P-32 PHOSPHATE SALTS
1st Preparation
Salt Analyzed
Specific Activity1 UCI/ml
Sa 11
Species
Activity
Distribution2 Distribut
Ortho (MSP)
152
ortho
>98.6*
Tripoly (STP)
150
ortho
2.1*
pyro tripoly
12.7 82.6
trimeta
1.7
long chain
0.9
0.2* 12.3 B5.7
1.1 0.7
Trimeta (STMP)
169
ortho
1-5*
pyro
0.5
tripoly
2.5
trimeta
95.0
1ong cha1n
0.4
0.1* 0.4 2.0 97.5 0.1
1 As of 11-3-75, 10:30 AM CST. 2 Paper chromatography * * Paper chromatography - Liquid Scintillation Counting.
>
RSV 0010749
S-75-SS-1i8
TABLE II
SPECIFIC ACTIVITY AND PURITY OF P-32 PHOSPHATE SALTS
2nd Preparation
Salt Analyzed
Specific Activity1 uC S/ml
Salt
Species
Activity
Distribution12 Distribut ion3
Ortho Tripoly
Trimeta
152
ortho
>99-5*
150
ortho
0.3
pyro
12.0
tripoly
86.5
trimeta
0.2
long chain
1.0
169
ortho
0.1
pyro
0.1
tripoly
0.8
trimeta long chain
99.0 ___
99.9*
0.2 9.9 88.6 0.3 0.9
-- 0.1 0.6 99-2 0.1
1 As of 12-3-75. 8:30 AM CST. 2 Paper chromatography - colorimetrically. 2 Paper chromatography - Liquid Scintillation Counting.
RSV 0010750
S-75-SS-48
TABLE I I I SPECIFIC ACTIVITY AND PURITY OF P-32 PHOSPHATE SALTS
1st Preparation1 * 3 * 5
Salt Analyzed
Specific Activity1
Salt
Species Distribution7
Acti vi t' Distribut
Tetrameta Hexameta
193 pCi/ml
ortho pyro tripoly tetrapoly trimeta tetrameta long chain
65 pCi/ml Hexameta
ortho pyro tripoly tetrapoly trimeta tetrameta high meta high poly long chain
16.5 14.4 18.4 9.4 10.9 30.1 0.3
___ 5 -- -- -- -- -- -- --
16.7 15.0 18.0 9.1
9.9 31.3
0.2
0.2 0.1 0.3 0.4 2.9 1.8 1.8 90.9 1.7
Insoluble Meta" 2456 yCI/g <197 pCI/capsule)
1 As of 12-23-75, 10:00 AH CST. 3 Paper chromatography - colorimetrlcaMy. 3 Paper chromatography - Liquid Scintillation Counting. * Not analyzed for Impurities. 5 Not analyzed colorlmetrically.
RSV 0010751
rigure 1. Drying Vmi1 for Drying 8TP Fed
a. Feed reservoir, cloitd with adjustable stopcock.
b. Nitrogen sweep, enters above and below stopcock to equalise pressure.
c. Drying vessel, pyrex for calcining. d. Oil bath* 10O*C. controlled* with agitation. e. Condensation trap* glass wool. f/g. Scrubbers with fritted glass diffusers and 100 ml.water, h. Vacuum air filter to sample scrubber effluent.
\M .\
8*rSS-SZ-$
RSV 0 0 1 0 7 5 2
DETERMINATION OF BENZENE IN AIR IN THE ST. LOUIS RESEARCH CENTER
Spectroscopy Special Study S-75-S$-l*$
INTRODUCTION
The purpose of this investigation is to determine worker exposure to benzene in Q building labs 0309 and 0311.
SUMMARY
Benzene levels ranging from 0.3 to 2.5 ppm were detected. The results are given in the table.
EXPERIMENTAL
GC retention time was used In the verification of benzene and calculations are based on a benzene standard. An example of the calculations is given below.
Calcula tions
Volume of Air k Pimp Flow Rate x Sampling Time t 10 5
Sampled (Liters)
(ml/min)
(min)
Weight Sample (pg)
m Area Sample Peak Cone. Std. (pg/uL) X Vol. Injected (uL)
(counts)
Area of Standard (counts)
Concentration Sample (u9/L)
Weight Sample (pg/L)/Volume of Air Sampled (Liters)
Concentration Sample (ppm)
P9/L
X H.W. (sample)
For Sampling 75-frl
Volume of Air Sampled
- 23-6 ml/min X 2kQ min X 10** - 5-7 L
Weight Sample (pg)
Concentration (pg/L)
- 3776*1 X 5 >V79F " <l5-27 ' ~tlT " 8-00
Concentration (ppm)
- 8.00 X
- 2.5 ppm
Reference: GC/MS File #75-220
ss Attachment
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
12/75 - L. H. Chapmen, C. E. Hoffmann, M. W. Dietrich
RSV 0010753
S-75-SS-49
TABLE
Insert if
Flow Rate
Samp!ing Time
Benzene Concentration
in Air
75-41
23.6 ml/min
4 hrs.
2.5 ppm
75-54
24 ml/min
6 hr 20 min
0.7 Ppm
75-35
23.5 ml/min
7 hr 52 min
0.3 ppm
75-45
24 ml/min
3 hr 4t min
2.2 ppm
RSV 0010754
Spectroscopy Special Study S-75-SS-50
PREPARATION AND CONDITIONING OF COLLECTION COLUMNS
INTRODUCTION
This report will explain the procedure for preparing and conditioning collection columns used for analyses of organic chemicals in air. Two types of columns are used most frequently: Tenax GC, used mainly for higher boiling materials and Porapak N, used mainly for low boiling compounds. The preparation of columns with these packings is the same but conditioning processes, described below, are quite different.
PREPARING COLLECTION COLUMNS
Materials needed:* 1
1/A" O.D. X 1/8" I.D. X 6" Pyrex glass tubing with dimple 1 1/2" from one end Silanated glass wool Tenax-GC 60/80 mesh column packing or Porapak Type N 50/80 mesh Supeltex H-2 I/A" vesbel ferro #02 - 23 20 Glass marking pen Conditioning oven (a GC oven or a column conditioning oven may be used)
Procedure:
1. Being sure the glass tubing is clean, take a pinch of glass wool, push it to the dimple, and snuggly pack it down.
2. Fill the tube with 0.18 grams of packing. If Tenax-GC Is used, or 0.31 grams of packing. If Porapak N is used. If the packing for one column is weighed, the rest may be measured by the first.
3. Tap one end of the column on the table so that the packing is firmly packed. This will reduce the chance of having gaps after conditioning.
A. Place another piece of glass wool on top of the packing and mark the tube with an identifying number. It is now ready for conditioning. Attached is a diagram of a collection column.
TENAX-GC COLUMN CONDITIONING PROCEDURE
1. Purge each tube with nitrogen for five minutes and put in a covered container also purged with nitrogen. Place the container in a 275C oven for 2A hours.
2. After the columns have been removed and cooled, condition them overnight in a 250C GC oven with helium or nitrogen carrier flow of about 30 mls/min, when connecting the column, gas flow should be through the column toward the end with the dimple. Several columns can be attached in series depending on the capacity of the GC. We recommend vesbel ferros for metal to glass connections because they withstand decomposition at high temperatures and are reusable.
RSV 0010755
K
TENAX GC COLUMN CONDITIONING PROCEDURE (Cont'd)
S-75-SS-50 Page Two
3. Remove and cool. The columns are now ready for use. Before a sampling, the columns should be reconditioned at 27SC for IS to 20 minutes with carrier flow of about 30 ml/min.
PORAPAK N COLUMN CONDITIONING PROCEDURE
1. Attach the column to the GC oven and set a carrier flow of about 30 ml/min. When connecting the column, gas flow should be through the column toward the end with the dimple. Several columns can be attached in series depending on the capacity of the GC available.
2. Slowly program the oven temperature to 160C and hold overnight or to I90C and hold for 2 hours.
3. Remove and cool. The columns are now prepared and conditioned for use. Before a sampling, the columns should be reconditioned at I90C for 15 to 20 minutes with carrier flow of about 30 ml/min.
ss Attachment
Monsanto industrial Chemicals Co. Applied Sciences St. louis, ho.
2/76 - L. M. Chapmanv M. W. Dietrich
RSV 0010756
S-75-SS-50
Ocl <jrr\AJ
r'
"in p^*' *
4 ?!
: ,*i W
Lc**aJLl &<uu * *
1*1 CD.
I*
i
RSV 0010757
Spectroscopy Special Study S-75-SS-5I
GC MODIFICATION FOR MEASUREMENTS OF ORGANIC CHEMICALS _______________IN AIR BY THERMAL DESORPTION
INTRODUCTION
Determination of organic chemicals in air, using the procedure described in Spectroscopy Method 76-1, requires some modifications of a laboratory gas chromatograph. A means must be provided to heat the collection column external to the GC. The heater we use is described In this report. It is also necessary to divert the carrier gas flow to an external line. Finally, the injection port septum nut must be modified so that the collection column can be attached to the GC. These modifications are described in this report for a HP-5710 gas chromatograph. Most other laboratory gas chromatographs can be modified in the same manner.
details
A. Construction of External Heater* I
Below is a description of how to prepare a heater for desorbtion of collection columns.
Heater for )/*" Glass 6" Vapor Sampling Tubes
Materials:
Approximately 8 ft. 2A-gauge BSS Chrome) "A" yellow asbestos covered Fisher Catalog #I5-539C for 100 foot spool
6" length 1/4" S.S. tube 5" X 13/16" paper .003 to .00*" Pyrex tube 10.) mm i.d. X * 3/A", notched both ends for wire 5" of narrow (2 mm) glass braid 2 ft. #30 BS Chrome! "A" base Hoskins Resistance wire I 5/8" X * 11/16" of .0025" anneal led A1 foil 8" X 8" - 1/A" polyurethane pad
Straighten yellow heater wire to remove kinks - large bends are O.K. Place I/A" S.S. tube lengthwise along edge of Al foil on foam pad; press down hard and roll. Al will roll up on tube to form a loose-fitting tube. Dampen paper; make one wrap around S.S. tube lengthwise as with foil; dry. Slip S.S. tube and paper shim into the Al tube. Place on smooth, hard surface; press hard and roll in direction of original roll-up. This will make foil into a snug fit of two turns. Tape one end of heater wire onto the assembly and tightly wind on, keeping it close spaced. Slip assembly into glass tube. Cut braid in half and thread onto end of heater wire to form one final turn in end of glass jacket; bend through notch and enough to wrap on with the #30 wire. Take a few turns of wire around braid; wind remainder around jacket snugly and secure. Check resistance (aim for 12.8 to 12.9) before securing second end. Estimate 86 turns with ^7*5 ft. wire overall for A 3/A". Finally, flare ends of Al sleeve to keep it from sliding out.
With He flow at ^30 ml/min., empty sampling tube and thermocouple in place situated at median area for the Tenax, a temperature of ^200C is achieved in 2 1/2 min. and held with Variac set at ^20 V. This calibration should be checked with each Variac used
RSV 0010758
S-75-SS-51 Page Two
8. GC Modification for External Carrier Gas Flow
Host gas chromatographs have a carrier gas fitting which is connected to the injection port through a flow controller valve and a molecular sieve trap. A three port valve can be placed in the carrier gas line between the molecular sieve trap and the injection port and mounted on the top or the side of the chromatograph (see diagram attached). With a valve of this type installed, the carrier gas can easily be switched to the external helium line for chromatographic purposes. We typically connect this external carrier gas line to one end of an air sampling tube. The other end of the tube is connected to the injection port of the chromato graph at the septum nut. Using the three port valve the carrier gas can be switched to the external line and used to flush organics from the heated sampling tube onto the head of the analytical GC coiumn. In this position the three port valve closes the normal carrier gas line to the injection port. This keeps sample and carrier gas from leaving the injection port through the normal carrier gas line.
We have found that a Whitey valve SS-42XF2 works well for this modifica tion. This valve has an intermediate position at which the input port is connected to neither exit port. This position can be used as a convenient shut-off for the carrier gas.
The diagram is a schematic of how the collection column is attached to the GC. What is not shown is the heater, but the collection column actually fits down into the heater and is attached to the injection port and the external helium flow with 1/4" Swage Iok fittings.
C. Modification of Septum Hut
A Swagelok SS-400-R-2 fitting is silver soldered to the septum nut as shown in the second figure. The hole in the septum nut must be enlarged to receive the fitting. A septum is still required to prevent leakage.
*ss Attachments(2)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho.
3/76 - L. H. Chapman, H. W. Dietrich
RSV 0010759
WS-SS-Si i i
i
RSV 0010760
S-75-SS-51 RSV 0010761
Spectroscopy S-75-SS-52
DECEMBER 1975 MERCURY INVENTORY, V. G. KRUMMRICH PLANT, ___CHLOR-ALKALI DEPARTMENT
INTROPUCTION S SUMMARY
The mercury inventory made at the V. G. Krurnmrlch plant on December 2, 1975 has been completed. The sum of the average weights for the 22 cells is 255*294 pounds, +2919.9 (2 sigma limits). This inventory is comparable to that taken in June 1975. Inventory by individual cells Is tabulated in Table i attached.
A specific activity of 1-96 X 10 k microcuries per gram was produced on the spiking date December 2, 1975-
The cell house was mixed for 60 hours except for cells 2, 10 and 19 which were mixed 36, 10 and 20 hours,respect!vely. Mixing was followed on 7 cells namely 1, 2, 5, 7, 10 and 21. This mixing study indicated complete mixing after 12 hours. On this basis, it was concluded that the three cells mixed less than 60 hours represent an accurate inventory.
ss Attachments(10)
Reference: Research Notebook MIC 264383*264398
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho. 12/75 - H. Yepez, 0. 8. Hines, M. V. Dietrich
RSV 0010762
vc
WtnCUi<Y IMVOTnitr
pef cui r nvrfjtary
rEcC'pE* 197c
CF.LL NO
AVERAGE NLPCURY INVENTORY f LRS)
STftHiJARn ncviATIPli I LT^ I
T*0 Si or.A - PERCENT LF TOTAL
<L6SI
1 U91f .60
2 10026*72
3 1U958.50
4 12201*2* 5 lC9r.j6
6 UICO.59 7 1 1620.21 0 107?6,66 9 11365.70 10 11656.35 11 11464.16 12 11290.62 13 12695.30 14 12146.14
15 13204.14
16 16671,91 17 12695,nc
le 1041p,0 9 19 11367.36 20 10691.55 21 13340.72 22 11963.93
42.13 71.97
72.03 53.*5 40. ie 50. 3 56.r4
77.95 67.12
62.9? AH.? 2
45.25 64.00 43.72 64.06 54.76 P0.95 37.0 7 65*06 82.26 I 42.63 60.72
84.26 143.94
144.06 107.09
96.35 1*>0.3b 112.00 155.69 134,2*
125.85 176,44
90.51 128.00
87.44 123.00 169.53 If 1.91
74.13 130.12 164.52 285.26 121.43
0.7f 7 1.32 1.315 0.373 0.87S
G.991 0. 964
1.457 1.132 1.0*0
1.5*9 0 * c* 1` l 1. i! r r 0,720
0.96 1.55 1.275 0.712 1.143 1.512 2.15*. 1.415
THE SUP OF THE AVERAGE WEIGHTS IS 255294.RP |_3S. THE SUM OF ALL TWO-SIGMA IS 2921.91 LPS.
VxtIj IAIA VN/>1
THE PERCENT THE SUM OF ALL TV.O-SlGWftS IS OF THE TOTAL INVENTORY k'EICHT =
1.145 PERCENT
RSV 0010763
Spectroscopy S-75-SS-53
DETERMINATION OF BENZYL CHLORIDE AND TOLUENE IN AIR AT THE DELAWARE RIVER PLANT
INTRODUCTION
The purpose of this study was to determine worker exposure to benzyl chloride and toluene.
SUMMARY
The results are attached. Levels of benzyl chloride ranged from 0.3 to A.7 ppm. Toluene was detected in levels from 1.4 to 16.1 ppm.
EXPERIMENTAL
An 0V 17 column was used for the analysis and Tenax tubes for sample col lection.
Calculations are based on benzyl chloride standard. Identification is based on GC retention times. Ortho, meta and para chloro toluene are resolved from benzyl chloride on this column.
Calculations
Volume of Air m Pump Flow Rate Y Sampling Time y ,n-j
Sampled (Liters)
(ml/min.)
Weight Sample (pg)
Area Sample Peak Cone. Std. (pg/pL) X Vol, Injected (pL)
(counts)
Area of Standard (counts)
Concentration Sample (pg/L)
Weight Sample (pg/L)/Volume of Air Sampled (Liters)
Concentration Sample (ppm)
pg/L
(sample)
x _2f M.W. (sample/
For Sampling 75-41 Benzyl Chloride
Volume of Air Sampled (Liters)
Weight Sample rs)
36.2 X 7 X I0`3 .253
1304 X 0.147 X 1.9 1033
0.35
Concentration (pg/i)
0.35 0.253
1.39
Concentration (ppm)
1.39 X 24.45 0.3 ppm
ss Attachment Reference: GC File #75-213
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho.
12/75 ~ L. M. Chapman, M. V. Dfetrich
RSV 0010764
#75-46 Sampling BzCl Refining Columns Toluene Dryer
table
Toluene (ppm)
Benzyl Chloride (ppm)
7-0 0.8
#75-57 Changing Filter Screen on Refining
Column Feed
3.7
4.7
#75-41 Benzyl Chloride to Storage
16.)
0.3
#75-37 Benzyl Chloride
Operator Rocky
1.4
0.3
#75-61 Operator while Taking Benzyl Chloride Samples
2.0
1.2
* Sampling time % 7-12 min Flow rate 216 ml/min
+ Sampling time 4-8 min Flow rate 36.2 ml/min
RSV 0010765
Spectroscopy Special Study S-75-SS-51
DETERMINATION OF ACETAMIDE (AC), N-METHYL ACETAMIDE (MMAC) AND DIMETHYLACETAMIDE (DMAC) IN URINE
INTRODUCTION
Samples were analyzed to determine levels of acetamide in the urine of workers at the Decatur, Alabama Plant. Control samples of non*exposed subjects were also analyzed for AC, MMAC and DMAC.
SUMMARY
The results are attached. Acetamide in the first set was detected at about 10 ppm (see Table I). A portion of the material detected was found to come from the resin used in the extraction before analysis. A blank should be run with each batch of samples to correct for this interference. Identification of acetamide was by GC/MS.
The second table shows GC analyses results for acetamide, MMAC and DMAC.
EXPERIMENTAL
Refer to Standard Test Method STM-00498, Textiles Division for procedure.
Identification by GC/MS was made by scanning the selected ions of acetamide
41, 59,
and 40. Comparison of GC retention time was also used in
identification.
References: GC/MS File #75"193 Standard Test Method STM-00498, Textiles Division, January 21, 197$
ss Attachments(2) Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo. 12/75 - L. H. Chapman, C. E. Hoffmann, M. W. Dietrich
RSV 0010766
\>*- V
TABLE (Set I)
S-75-SS-S*
Sample James Aldrich Kenneth R. Lanfcert #25 (control) #26 (control) blank
Acetamide (ppm) 8.9
11.2 11.3
2.7 \ .2
RSV 0010767
S-75-SS-54
TABLE (Set 2)
Sample Number
1 2 3 4 5 6 7 B 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26
DMAC
CONCENTRATION IN PPM
HMAC
AC
NO ND 7 ND ND ND ND ND ND ND ND ND ND ND
? ND ND ND >5007 ND ND ND ND ND ND ND
ND M ND 15 74 ND 3 ND 13 ND 20 ND 15 ND 15 ND 11 5? 25 ND 13 5? 3 ND 7 ND 15 5? 15 ND ND ND 13 ND 7 ND ND ND 7 20? 13 ND 5 ND ND ND 11 5? ND ND ND
Other Compounds
ca 5
15
0HAC HD < 5 HMAC HD 3
AC HD < 3
Accuracy 0-20 ppm + 2 ppm 500 ppm +100 ppm
RSV 0010768
Spectroscopy Special Study S-75-SS-55
CHLORINATED DIBEN20FURANS IN CRUDE HONOCHLOROBENZENE ____________ FROH THE OXYCHLORINATION PROCESS
SUMMARY
After Process Chemicals research (Dennis Kalota) confirmed the presence of octachiorodibenzofuran on the oxychlorination catalyst, other chlorinated isomers of dibenzofuran were suspected of being produced In the process. GC/MS analysis of crude monochlorobenzene (MCB) and pot residues showed the presence of chlorinated dtbenzofurans (dichlorodfbenzofuran through octachlorodlbenzofuran) at levels In the range of one ppm for the crude MCB and several hundred ppm for the pot residue.
DISCUSSION
The selected ion monitoring (SIM) mode of operation provided the data used to measure the various chlorinated dibenzofurans. The SIM technique and possible interferences are described in detail at the end of this report. Table I shows the results for a pot residue and a crude MCB from laboratory oxychlorination. All isomers with the same number of chlorines are sunned to give one value in the table. Diphenyl ethers with two more chlorines than the corresponding dibenzofuran are also included in these values since they have fragment ions which interfere with the dibenzofuran measurements.
A sample of Hooker Crude MCB was analyzed for tetrachloro through octachlorodibenzofuran; the results are shown In Table li.
The initial analyses (Table I) had to be performed on a crude MCB and a pot residue from different laboratory oxychlorinations. Another oxychlori nation provided material from each step which was analyzed for two chlorinated dibenzofurans. The refined MCB (1008348) and the recovered benzene (1008348) contained no tetrachlorodlbenzofuran with a detection limit of 0.2 ppm and no octachlorodibenzofuran with a detection limit of 0.6 ppm. The base scrubbed crude and the unscrubbed crude contained the same level of octachloroand tetrachlorodlbenzofuran. These data along with the corresponding pot residue are shown in Table III.
Crude MCB from oxychlorination was also analyzed for chlorodioxins using the SIM technique. No dioxins were found and the detection limits are given In Table IV.
EXPERIMENTAL
In the selected ion monitoring (SIM) mode of operation, the mass spectrometer is set to continuously monitor one or several Ions characteristic of the compound being measured. SIH is one hundred to one thousand times more sensitive than the standard scanning mode of GC/MS analysis. For this study, electron impact ionization was used to form ions in the mass spectrometer since dibenzofurans and dibenzodioxins give good parent ions and their electron impact fragmentation is documented. The GC conditions used for the analysis are given below.
Column: IM, 3* 0V 1, 3 fm I.D.
Carrier Gas: He, 30 ml/min
Temperature: 110 to 270C ei6/min
*
RSV 0010769
EXPERIMENTAL (Cont'd)
S-75-SS-55 Page Two
The SIM measurements for chlorinated dibenzofurans and chlorinated dioxins were made by monitoring the parent ion for each compound and matching retention times with known standards. Confirming ions, parent ion less 63 amu, 'were monitored for tri-, tetra- and octachlorodibenzofuran. The full spectrum of octachlorodibenzofuran was obtained by a solids probe analysis of the material isolated from the oxychlorination catalyst using the Hewlett-Packard 5982 GC/MS system.
Quantitation for both dibenzofurans and dibenzodioxlns was done by comparing the response of standards with the response of the corresponding compound in the MCB sample. Because of the low levels being measured the values in the table could vary by 20% of the value.
The detection limits for the chlorinated dibenzodiox ins vary because the sensitivity of the mass spectrometer changes as the number of chlorine atoms on the molecule changes. The detection limits for tetra-, hexa-, heptaand octachlorodibenzodioxins were determined by running standards. The detection limit for pentachlorodlbenzodioxin was taken as the average of the detection limits of tetra- and hexachtorodibenzodioxin. The detection limits for mono-, di- and trichlorodibenzodioxin were assumed to be the same as that for tetrachlorodibenzodioxln. This Is a good assumption for calculating limits of detection since the mass spectrometer sensitivity for
the dibenzofurans and dibenzodioxins actually increases with a decrease in the number of chlorine atoms.
The SIM technique is subject to interferences from compounds having ions at the same mass value as those used to detect the target compounds, e.g. dibenzofurans. Normally, these interfering compounds do not have the same GC retention time as the target compounds and can be distinguished on this basis. The loss of specificity is the price paid for the large increase in sensitivity which makes the SIM technique so useful. The chlorinated
dibenzofurans are subject to an unusually severe Interference from chlorinated diphenyl ethers. The mass spectrum of chlorinated diphenyl ethers all have a very strong fragment ion corresponding to the loss of Cl from the original molecule. This means that the mass spectrum of decachlorodiphenyl ether has a strong ion at 510 (molecular wt.) less 70, or kkO. This Is exactly the molecular weight of octachlorodibenzofuran and the LAO ion from the ether also has the same chlorine Isotope pattern as octachlorodibenzofuran.
Other fragment Ions from decachlorodiphenyl ether Interfere with possible confirming Ions for octachlorodibenzofuran. This type of interference by diphenyl ethers with two more chlorines than the corresponding dtbenzofuran holds true for ell of the various chlorinated dibenzofurans. The GC retention times of the chlorinated dibenzofurans and the corresponding Interfering ethers are close. The analysis of the ethers and dibenzofurans as separate entities at low levels would be very difficult. The business group has agreed that the measurement of the sum of these two types of compounds wi11 be e useful tool for current process studies.
There are definitely chlorinated dibenzofurans in crude MCB which are not obscured by corresponding ethers. Table V gives an estimate of diphenyl ether interference for one sample of pot residue assuming the same sensitivity for both types of compound.
RSV 0010770
EXPERIMENTAL (Cont'd)
S-75-SS-55 Page Three
Table VI Is a survey of likely Interferences for tetrachlorodibenzofuran. Only the major probable interfering ions are listed for each compound.
Some of the compounds do not interfere, some interfere with a few ions of tetrachlorodibenzofuran, and hexachlorodiphenyl ether interferes severely* This table illustrates the type of background information which is needed
to do careful SIH analysis.
ss Attachments(6)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Mo.
12/75 * G. W. Happes, M. W. Dietrich
RSV 0010771
S-75-SS-55
TABLE I OI8ENZOFURANS AND 01 PHENYL ETHERS IN PPH*
Oetach1orodibenzofuran (and decachlorodiphenyl ether)
Heptachlorodibenzofuran (and nonachlorodiphenyl ether)
Hexach1orodIbenzofuran (and octachlorodTphenyl ether)
Pentach1orod1benzofuran (and heptachlorodiphenyl ether)
Te trach1orod1benzofuran (and hexachlorodlphenyl ether)
Trichlorodlbenzofuran (and pentachlorodiphenyl ether)
Dech1orod1benzofuran (and tetrachlorodiphenyl ether)
Monochlorod1benzofuran (and trfchlorodiphenyl ether)
Pot Residue 1008339-1*
230 590 6.5 460 200 31 < 10
Crude 1008339*8
1.2
0.9 l.l
0.5 0.4 0.2
0.05 < .2
* SIM GC/MS analyses cannot accurately distinguish between these classes of compounds. Both are probably present In most samples (see Table V).
RSV 00X0772
S-75-SS-55
TABLE II DIBENZOFURANS AND DIPHENYL ETHERS IN PPH
HOOKER CRUDE MCB MIC 1006339*9
Octachlorodibenzofuran (and decachlorodiphenyl ether)
Heptachlorod1benzofuran (end nonachlorodiphenyl ether)
Hexachlorod1benzofuran (and octachlorodiphenyl ether)
PentachlorodIbenzofuran (and heptachlorodiphenyl ether)
Tetrachlorod(benzofuran (and hexachlorodlphenyl ether)
13
6.k k. 2 1.6
RSV 0010773
S-75-SS-S5
TABLE 111 DI8EHZ0FURANS AND DIPHENYL ETHERS IN PPH
Crude HCB 1008348-1,2,3
Pot Residue 1008348
Octachlorodibenzofuran (and decaehlorodiphenyl ehter)
1.7 110
Tetrachlorodibenzofuran (and hexachlorodipheny1 ether)
.20
RSV 0010774
TABLE IV
DETECTION LIMITS IN PPM CRUOE MCB 1008339-8
S-75-SS-55
MonochlorodIbenzodI ox In DichlorodibenzodI ox In TrichlorodIbenzodioxIn Tetrachlorod!benzodIoxin Pentachlorodibenzodioxin Hexachlorod t benzodioxin HeptachIorodibenzodioxIn Octachlorodibenzodioxin
ND < 0.I ND < 0.1 ND < 0.1 ND < 0.1 ND < 0.2 ND < 0-3 ND < 0.4 ND < 0.4
RSV 0010775
S-75-SS-55
TABLE V ESTIMATED DIPHENYL ETHER INTERFERENCE
FOR POT RESIDUE 29*W1
Dibenzofuran ______________
Concentration ________________
Percent contribution from diphenyl ether
Octachlorodibenzofuran Heptachlorodibenzofuran
25 ppm 23 ppm
5"10% 10*30%
Pentachlorodfbenzofuran
11 ppm
50-80%
Tetrachlorodlbenzofuran
39 ppm
50-80%
Dichlorodibenzofuran
0.6 ppm
5*10%
RSV 0010776
RSV 0010777
Spectroscopy Special Study S-75-SS-56
THE PREPARATION AND CHARACTERIZATION OF CARBON-14 LABELED TETRADECANOL ETHOXYLATES
BACKGROUND/SCOPE
In recent years* the increased emphasis placed on determining the environmental impact of our products has led to sophisticated investigations of their biological fate. The use of radio-tagged materials has gained wide acceptance as a means of following their biodegradation and biomagnification in organic systems. Carbon-14 labeled sodiun alkyl benzene sulfonates (LAS) have been prepared and their biomagnification studied in aquatic organisms. To place the results of the above study in the proper perspective, the decision was made to prepare carbon-14 labeled nonionic surfactants and to evaluate their, as well as other tagged surfactants', biological fates.
This report covers the preparation and characterization of carbon-14 labeled non ionics (tetradecanol ethoxylates) incorporating the following objectives:
1. Adapt existing standard bench ethoxylation procedures and equipment to guarantee personnel safety and commercial quality.
2. Prepare 25 gram quantities of the following ethoxylates:
a. 1-tetradecanol-1%C + 7E0; 400 uci/gm.
b. 1-tetradecanol + 7E0 - lvC; 340 uci/gm.
c. 1-tetradecanol + 14E0 - lfcC; 60 uci/gm.
3. Prepare 400 grams and 100 grams of cold 7 mole and 14 mole ethoxylated 1-tetradecanol to serve as diluent for labeled products.
SUMMARY AND CONCLUSIONS
A. Existing small-scale Itboxylation procedures and equipment were modified and refined until a high degree of confidence was achieved in providing for personnel safety and high product quality. A final practice ethoxylation was successfully performed in T-305 under actual conditions planned for the tagged syntheses.
B. The labeled syntheses carried out to prepare I-tetradecanol-^C + 7E0 and 1-tetradecanol + 14E0 - |4C achieved targeted quality and specific activity. However, a significant labeled ethylene oxide loss (3 grams, 201) which occured during'-the^preparation of the 1-tetradecanol + 7E0 - ,VC ethoxylate resulted In a product containing less than desired ethylene oxide content (actual 5.6 E0) and specific activity (290 uci/gm. vs 3*0 uci/gm). This material has been judged acceptable and a second synthesis was not necessary. Diluent ethoxylates were preparecT'as targeted.
C. Radiochemical safety objectives were satisfactorily met. The labeled ethylene oxide leakage did not contaminate either attendant, personnel or facilities, but escaped to the atmosphere via the synthesis hood.
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RSV 0010778
S-75-SS-56 Page Two SUMMARY AMD CONCLUSIONS (Cont'd) 0. A new technique for determining the ethylene oxide adduct distribution of single homolog alcohol based ethoxylates by high pressure liquid chromatography was developed jointly by the MIC Physical Sciences Group and the authors. This method was useful in confirming product quality of both labeled and diluent ethoxylates and is currently being refined for use in tracing intact or partially degraded ethoxylates in biological systems. E. Aliquots of the labeled and cold ethoxylates were delivered to R. 0. Swisher. Unused portions of the labeled ethoxylates are stored in T-305 for future applications.
Reference (Complete Report): 1. Special Report ,rThe Preparation and Characterization of Carbon-14 Labeled
Tetradecanol Ethoxylates" by J. B. Hillard and D. B. Hines, Job. No. 74041-10, Report No. 8347-
ss Monsanto Industrial Chemicals Co. Applied Sciences St. Louis, Ho. 12/75 - J. B. Hillard, 0. B. Hines, V. J. Lftschgl, M. U. Dietrich
RS V 001.0779
Spectroscopy Special Study S-75-SS-57
ORGANIC CONTAMINANTS IN TRENTON PHOSPHATE PRODUCTS
INTRODUCTION
The Trenton phosphate plant experienced a problem of contaminants in food grade pohsphates that appeared to be related to the soda ash obtained from Wyandotte BASF. The problem Mas felt to be due to organic contamination since no quality problems were encountered with the high temperature polyphosphate and IMP products. A study was initiated to identify the
organic contaminants so that either new test procedures or new specifications could be formulated to prevent future quality problems.
SUMMARY
The contamination problem was Identified In the failure of some phosphate products to pass the food grade patch test. For this test the product is dissolved in water and the solution Is filtered. When this test was carried out on "Bad" sodium acid pyrophosphate (SAPP) a dark oily stain was left on the filter pad.
During the period of contamination a balck scale was found in the east MSP hold tank. This contained significant amounts of organic material (^30$) composed mainly of long chain hydrocarbon oil with small amounts of carboxylic acids. This scale is probably not directly responsible for the failure of SAPP to pass the test; however, the scale does represent a likely collection point for any organics getting into the process. Wyandotte essentially agreeswith the analyses of the black scale.
Analyses of organics removed from good andbad soda ash and from good and bad SAPP did not give a conclusive reason for the failure of SAPP to pass the test. Small amounts of hydrocarbon oil were found In the bad soda ash but not in the bad SAPP.
Hydrocarbon oil was not found In good soda ash or good SAPP.
Hydrocarbon oil entering the plant throughthe soda ash raw material and collecting In various parts of the process Is the most likely cause of the patch test failure.
RESULTS
Infrared, proton nuclear magnetic resonance and gel permeation chromatography of the organic components isolated by either Soxhlet extractions or surface washings of "good" and "bad" SAPP (sodium acid pyrophosphate), "good" and "bad" soda ash from Wyandotte BASF and a black oily scale from the Trenton plant east MSP hold tank showed:
A. The black scale Is a matrix of an acid phosphate coated with a mixture of a long chain hydrocarbon oil and polymeric carboxylic
acids.
B. The chloroform surface washings of "good" and "bad" soda ash showed the "bad" ash contained a low level of a hydrocarbon oil. The "good" soda ash wash was a phthalate ester.
C. IR analysis of the chloroform surface washes of "good" and "bad" SAPP Indicated both were phthalate esters.
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RSV 0010780
RESULTS (Cont'd)
S-75-SS-57 Page Two
D. IR comparison of the IR spectra of "good" and "bad" soda ash showed a two-fold increase in the level of THF extractables for the "bad" ash. The THF extractables from the "bad" ash are
.approximately a 50/50 mixture of a hydroxy carboxylate ester and a phosphate ester. The phosphate ester was not detected in the "good" ash.
a
E. The THF extractables from "good" and "bad" SAPP showed a seven-fold increase in level of extractables and a difference in chemical identity. The "good" SAPP sample was Identified by IR as a carboxylic acid. The "bad" SAPP extract contained the same type of impurities found In the "bad" ash.
F. NMR analysis of the THF extractables from "good" and "bad" soda ash and "good" and "bad" SAPP indicated that the organics isolated from the "good" and "bad" soda ash and the "Bad" SAPP may be principally THF decomposition products. There may be a synergistic effect of a metal Impurity triggering the decomposition of the THF.
Several possible mechanisms can be proposed for the decomposition of a THF peroxide or hydroperoxide to yield alcohols and carbonyl compounds.
G. IR analysis of the acetone washing of chloroform washed "bad" soda_ ash and "bad" SAPP showed that the "bad" ash contained a primary
amide as its principal component. This amide is absent in the "bad" SAPP and In the acetone blank.
Optical microscopy of the filter patches obtained from "good" and "bad"
soda ash and "good" and "bad" SAPP showed all the samples contained particulates. The "bad" ash and "bad" SAPP patches contained In addition an oil coating on the fiI ter fibers.
These results are summarized in Tables I and II.
EXPERIMENTAL
A. Black Scale from East MSP Hold Tank
An 8.000-g sample of the oily black scale from the east MSP hold tank at the Trenton, Michigan phosphate plant was weighed into a cellulose thimble and successively extracted with 50 ml of increasing polarity solvents using a Soxhlet extraction apparatus. The extraction was continued with each solvent (hexane, chloroform, methanol and tetrahydrofuran) until no color was observed in the liquid in the extractor tube. The Isolated fraction was quantitatively transferred to a 100-ml beaker and evaporated to about 5 ml on a hot plate under a stream of nitrogen. The reduced volume sample was filtered through a 0.2-u cellulose filter and the filtrate and filter washings collected in a 3-dram tared vial. The remaining solvent was stripped under a stream of nitrogen on a hot plate. The isolated fractions were placed in a bell jar and pumped to 0.5 to 1 torr to remove any remaining solvent
and then weighed.
RSV 0010781
S-75-SS-57 Page Three
EXPERIMENTAL (Cont'd)
6. Soda Ash and SAPP (Sodium Acid Pyrophate)
1. Forty to fifty g of "good" and "bad" samples were weighed into a
. 25 up X 250 mm chromatography column piggges with glass wool and
equipped with a Teflon stopcock. The samples were tightly packed
using a mechanical vibrator. Fifty ml of chloroform
on the column, the stopcock opened and the solvent allowed to
percolate by gravity through the packed sample until the solvent
just covered the top of the solids. The eluent from the column
was collected in a 25-ml graduated cylinder. The column hold-up.
about 30 ml. was determined by subtracting the volume of eluent
collected from the 50 ml charged. The collected column eluent was
quantitatively transferred from the graduated cylinder to a 250-ml
beaker. One hundred mi of fresh chloroform
added to the column
and the eluent combined with the Initial volume collected. When the
level of solvent reached the top of the solids, e volume of inhibitor*
free tetrahydrofuran (Burdick and Jackson Laboratories, fnc.) equal
to the column hold-up was added to the column. This volume of
solvent was allowed to flow through the packed solids until the
liquid level reached the top of the solids. The eluent was combined
with the other chloroform washes. By this means the chloroform was
completed, eluted from the column and the packed sample had been
washed with about five column volumes of chloroform. One hundred
fifty ml of fresh tetrahydrofuran was allowed to percolate through
the sample and collected In a clean 250-ml beaker.
Both the chloroform and tetrahydrofuran eluents were filtered through
a 0.2-y filter to remove any sample fines that might have washed through the glass wool plug. The solvents were stripped to about a 5~m1 volume under a stream of nitrogen on e hot plate. The concentrated solution was incrementally transferred to a tared 1-dram vial and evaporated to near dryness under a stream of nitrogen on a hot plate. The beakers were washed with several small volumes of presh solvent, the washings transferred to the tared vials and the solvent completely stripped under a nitrogen stream on a hot plate. The vials containing the solvent extracted fractions were placed in a drying oven at 110C for about 10 minutes, placed in a bell jar and pumped at 0.5 to 1 torr, cooled in a deslcator and weighed.
2. The same procedure was used on l*bad" soda ash and "bad" SAPP substituting acetone for tetrahydrofuran.
3. Equipment and solvent blanks were carried using the same glassware used for the samples.
REFERENCES
Ift spectra 75-368 to 75-385; NNR 16-1101
ss Attachments(2)
Monsanto Industrial Chemicals Co. Applied Sciences St. Louts, No.
1/76 - 8. Katlafsky, M. V. Dietrich, D. B. Hines, 0. E. Ktnast, V. J. Lftschgi, 6. W. Nappes, C. Deatherage
RSV 0010782
S-75-SS-57
TABLE I BUCK SCALE FROM EAST MSP HOLD TANK
EXTRACTION SOLVENT
PERCENT EXTRACTED
IDENTIFICATION
Hexane
19.B
Long chain hydrocarbon oil
Molecular weight 650
[iR, NHR, GPC (gel permeation chromatography)]
Chloroform (5.9)
Methanol (2.4) THF (0.2)
8.5 Carboxylic acid plus alcohol or ether Molecular weight 400 to 2000
[|R, NMR, GPC]
Left after extraction (Includes H2O)
71*7
(By difference)
I
RSV 0010783
S-75-SS-57
TABLE II ANALYSES OF SAPP AND WYANDOTTE SODA ASH
GOOD SODA ASH 7-14 to 9-1
GOOD SAPP Lot **56
_______ BLANK
Hicroscopy of plant fI Iter pads
Particulates
Particulates
CHCU Extract
Phthalate Ester 15 ppm
Phthalate Ester 2 ppm
Phthalate Ester 2 ppm
THF Extract -'ter CHCI3)
Hydroxy ester* 48 ppm
Carboxylic Acid 34 Ppm
Ester 2 ppm
BAD SODA ASH
BAD SAPP 1740 W
* -.roxcopy of p lant fiIter P^s
CHf U Extract
Particulates + oi1 coating on fibers
Hydrocarbon ol1 < 2 ppm
Particulates + ol 1 coatings on fibers
Phthalate Ester 41 ppm
Phthalate Ester 2 ppm
Extract ,.fter CHCI3)
Hydroxy Ester + Polyphosphate Ester*.**
78 ppm
Ester + Polyphosphate Ester*
229 ppm
Ester 2 ppm
A.a tone Extract (after CHCI3)
4 ppm
4 ppm
5 ppm
All extracts are Highly colored. * Materiel found may be principally THF decomposition products. ** We cannot completely rule out Inorganic phosphate and organic ester as separate components
RSV 0010764
1*% . c* APPENDIX I
NIOSH PRIORITY LIST FOR CRITERIA FOR TOXIC SUBSTANCES AND HARMFUL PHYSICAL AGENTS, 1972
Criteria Developed:
Carbon Monoxide Noise Heat Stress Beryllium Asbestos Coal Dust1
In Progress:
Arsenic Benzene Cadmium and Compounds Chromic Acid Mist Cotton Dust Fibrous Glass Lead Mercury Parathion
Silica Trichloroethylene Ultraviolet
\ -------------------------------------- .
Priorities:
Bis (Chloromethyl)Ether Coal Tar Pitch Volatiles 1. 2-Naphthylamine Toluene Diisocyanate Radioactive Products of Uranium Mining (Gaseous and Particulate)
Benzidine and Its Salts Carbon Tetrachloride
'According to NIOSH, this criterion was developed in conjunc tion with the Bureau of Mines, Department of the Interior, in implementing the Federal Coal Mine Health and Safety Act of 1969.
65
RSV 0010785
APPENDIX I
-
2. Ozone Sulfur Dioxide Tin and Compounds
1-
Chromium Compounds Diehlorobenzidine 3. Oxides of Nitrogen Sodium Hydroxide Sulfuric Acid
Carbaryl Chloroform 4. 4-Dimethylaminoazobenzene Nitric Acid Toluene
Ammonia beta*Propiolactone
5. Epoxy Resins Methylene Chloride 4-Nitrodiphenyl
Asphalt Fumes Ethylene Dichloride 6. Fluoride and Hydrogen Fluoride Ploychlorinated Biphenyls Tetrachloreethylene
2-Acetylaminofluorene
Chlorobenzene 7. Methylene Bisphenyl Isocyanate (MDI)
Phosgene Trichioroethane
Acetone 4-Aminodiphenyl 8. Dieldrin Malathion N-Nitrosodimethylamine
Aniline Copper and Compounds 9. Cyanides Styrene Zinc and Compounds
66
RSV 0010786
c
Chlorine Formaldehyde 10. Manganese and Compounds Phenol Platinum and Compounds
Acrolein Aluminum and Compounds 11. Carbon Disulfide Methyl Ethyl Ketone Vinyl Chloride
Creosote Methyl Chloride 12. Nickel and Compounds Phosphorus and Compounds Tetrachloroethane
Acrylonitrile 2, 4-Dinitrophenol 13* Magnesium and Compounds Methyl Alcohol Paraffin
v Ammonium Nitrate Cold Stress
14. Dioxane Fluorine Microwaves
Hydrogen Chloride Ethyl Benzene 15. Nitroglycerin Vibration Xylene
Methyl Butyl Ketone Mineral Spirits 16. Oil Mists Selenium and Compounds Turpentine
r APPENDIX I
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! *1
i
RSV 0010787
APPENDIX I
c
Arsine Gasoline 17* Kerosene Iron and Compounds Petroleum Naptha
Barotrauma Cresol 18. Paraquat Portland Cement Talc
Carbon Black Coherent Energy (Laser Radiation) 19. Ethylene Oxide Impact Noise Proteolytic Enzymes
Source: NIOSH.
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68 RSV 0010788