Document aBVjbqRO9zo3w1o6JYQD3O1mB
S. E. Qebura M. P. Drutnm
Date Typed: January 20, 1959 Date Issued: '/3o^j'J
Prepared by: S. E. Oebura
This report and the information contained herein
is the property of the MONSANTO CHEMICAL COMPANY
STLCOPCB4095052
STLCOPCB4095053
TABLE OP CONTENTS
Page No,
VI. VII.
INTRODUCTION.................................. .......................................
1
SUMMARY..................................................................................
CONCLUSIONS.......................................................................................... RECOMMENDATIONS..............................................................
3
PATENT STATUS......................................................................
REFERENCES.............................................................................................
5
EXPERIMENTAL.........................................................................................
7
A. Apparatus
7
B. Procedure 1. Tetrachlorobispnenol-A (TCBPA)
(a) Diglycidyl ether
ib) Qlycidyl polyethera
11
(c) Dl- -glycerol roonochlorohydrin
12
2. Hydrolyzed Aroclor 1262
(a) Qlycidyl ether mixture
13
vb) QlyciJyl polyether
16
3. Blahpenol-A (BPA)
(a) Liquid Resina (Epon 828 Type}
17
(b) Solid Resina (Epon 1001 Type)
19
VIII.
DISCUSSION........................................................... A. Reaction of TCBPA with Excess Epichloro-
hydrln........................................... 21
B. Reaction of Hydrolyzed Aroclor 1262 with Excess Epichlorohydrln
23
C. Reaction of BPA with Excess Epichlorohydrln 24
D. Preparation of Polymeric Epoxides
26
E. Preparation of Epoxides from Qlycerol
29
?. Economic Evaluation of the production
of Epon 562, 828 and 1001 Type Resins
30
XI. MATERIAL SPECIFICATIONS AND ANALYTICAL PROCEDURES....................................................... 39
XII. XIII. XIV.
TOXICITY AND HAZARDS.................................................................... 41
ACKNOWLEDGMENT................................................................................... 43
APPENDIX............................................................................. A. Patent Survey, Summary 4 Conclusions B. Definitions of terms, Calculations
Notebook Pages Physical Properties
Jo 47
50
1 4 4
21
43
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TABLE OP CONTENTS Cont1
Table XI Reactior of Polyhydrlc Phenols and Epiohlorohydrin
Table XII Reactions of TCBPA with Excess Eplchlorohydrln
Composition of Hydrolyzed Aroclor 1262 Infra Red Spectra
l r f 1*f*
STLCOPCB4095055
1- -
I. INTRODUCTION:
The market for epoxy resins has been prajeoted to substantial quantities1 by I960 (Ref. 1). Monsanto has a basic position in bisphenol-A and other polyhydric phenols wiiicn are used in these products. Considerable capital is Invested in manufacturing facilities for thermosetting resins which may be threatened somewhat by epoxies or which might be advantageously supplemented by a line of epoxy resins.
The manufacture of epoxy resins has been considered previously and the opportunity to enter the field as a licensee rejected. As the use of epoxy resins nas grown, the question of their manufacture periodically recurred. Up to the present time no thorough patent search, process study or economic evaluation has been made and these form the only sound basis for defining Mon santo's interest in these products.
This report reviews the research contribution to the several
projects listed above - a study of the chemistry of epoxy resins
with emphasis on the use of Monsanto polyhydroaromatlcs, the
development of laboratory processes for commercial epoxies and a
search for technological advantage which might result through the
use of new chlorinated diphenols (hvdrolyzed Aroclors and
tetrachlorobiapheriol-A) (Ref. 2 4 3;.
also includea the re
sults of economic analyses by Division engineering.
This work was supplemented by a thorough patent survey concerning the epoxy resine, made with the cooperation of the Springfield Patent Department. The Initial Intent of this work was to ex
plore the ohemlstry of epoxy reslne based on bls-phenol-A (BPA) and other Monsanto dlhydrlcphenols as It pertained to the use of these products in thermosetting reain systems. It developed, however, that these raw materials might be better exploited by entry into the epoxy resin field. It was recognized, that although chlorinated polyhydric phenols might find a place in the epoxy market, entry into the resin field would be determined principally by the economics based on bls-phenol-A.
II. SUMMARY:
An economic analysis was made of the manufacture of the three basic epoxy resin types in use today:
Epon 828* Epon 1001* Epon 562* *3hell Chemical
based on bls-phenol-A and eplchlorohydrln; liquid, high epoxy content, used as an Industrial adhesive. based on bls-phenol-A and eplchlorohydrln; solid, low epoxy content, used in surface
coatings. %ased on glycerol and eplchlorohydrln; liquid, high epoxy content, uaed as an adhesive and in textile treating.
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The studies were based on laboratory procedures developed for the products based on bis-phenol and on a patent procedure for the glycerol based produot.
A recommendation to enter the epoxy field as a resin manufacturer
can not be made based on the following results of this economic
analysis:
Return on Investment After
Selling Price
50# Tax Marxes BPA Integrated BPA
Epon 1001 type
*3,000,000 lbs/yr. *5,000,000 lbs/yr.
$0.605/lb.
6.0*
6.7*
9.0* 10.7*
Epon 828 type
*1,000,000 lbs/yr. *3,000,000 lbs/yr.
$0.90/lb.
22.0*
Epon 562 type
*1,000,000 lbs/yr. *3,000,000 lbs/yr."
$1.10/lb.
281..S0**
Monsanto Sales.
The most profitable products and those with the greatest growth potential are tnose which do not allow Monsanto to take full advantage of its raw material position. Epon 828 uses an excess of eplchlorohydrln which contributes most to raw material costs. Epon 562 uses no Monsanto products. Without a basic position in eplchlorohydrln, the eoonoalos are not sufficiently at tractive to encourage capital Investment.
Laboratory procedures were developed for the synthesis of liquid and solid epoxy resins based on bls-phenol-A (BPA) in good yields. The dlglyoldylether of tetrachloroblsphenol-A (TCBPA) was prepared in quantitative yields, and a patent application on the process was filed. A series of polymeric epoxleB were synthesized in moderate to high yields by reacting eplchlorohydrln with TCBPA and mixtures of TCBPA and BPA. Tetrachlorobiapheml-A gives epoxy resins of high epoxy content whlon are solid, fast
curing and of good color. This raw material should definitely be exploited in the resin field.
Hydrolyzed Aroclors (ohlorlnated bl-phenyls) form another series of dlhydrlo aromatics. A laboratory procedure for the prepara tion of the dlglyoldyl ether of hydrolyzed Aroclor 1262 was developed and a patent application filed. The initial samples of hydrolyzed 12o2 were not homogeneous with regard to dlr.ydroxy content) they were as much as 24* mono-hydroxy. This contributed markedly to the poor performance of the resins. It is suggested
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that a new hydrolysis procedure be established which will furnish all dihydroxy components. This raw material should then become attractive as another building block for epoxy resins.
A fairly complete patent survey of the epoxy field was made con cerning manufacture, curing and use in other thermosetting systems, including a search in the Washington Patent office. It is concluded that a competitive line of epoxy resins based on BPA can rot be de veloped without infringement. More patent possibilities exist witn systems based on phenolic lump resins, TCBPA and mixtures of BPA and TCBPA. Epoxy resins can be used in combination with many thermo setting systems. Those of principal interest to Monsanto are phenolic-protein adhesives, melamine, urea and phenol formaldehyde reslna, polyurethane, nylona, polyacrylonitriles and sulfonated polystyrene. In the curing of epoxy reains, most of the coverage
is specific and covers a broad range of materials.
III. CONCLUSIONS:
Monsanto's potential sales In the epoxy resir.a field wo(ild be reasonable at the following levels:
Epon 828 type Epon 1001 type Epon 362 type
3.000.000 lbs/yr, 5.000.000 1,000,000
At current prices, using market priced raw materials, only Epon 828 ahowa a return on investment sufficiently attractive for capital Investment. As this product is used in greater quantities result ing in lower price, the return quickly becomes marginal. Integra tion of the bls-phenol-A facilities has little effect on these returns due to the relatively low proportion of BPA compared to Epichlorohydrin. Epon 562 does not use BPA and the profitability of Epon 1001 Is not effected markedly by integration of BPA facilities. Epichlorohydrin is common to all of the materials, however, and only through integrated manufacture ot epichlorohydrin can this line of products become interesting economically and tnere is little else to warrant the manufacture of epichlorohydrin.
Epoxy resins of the types described can be manufactured in con ventional processing equipment similar to that now employed for the synthesis of solid and heavy viscosity thermosetting products.
Monsanto la thoroughly experienced with the techniques involved. Good yields of high quality products have been synthesized in the laboratory from bis-phenol-A, tetrachlorobisphenol-A and hydrolyzed Aroclors.
It would be most difficult to enter the epoxy resin field without
infringement of patents as reaction products of ble-phenol-A and epichlorohydrin are well covered. Resins based on TCBPA,
mixtures of TCBPA with BPA and hydrolyzed Aroclors are relatively free of infringement as are products based on phenol-formaldehyde
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''I* +* f*
STLCOPCB4095058
resins. These products, however, are specialty Items and It Is questionable whether the volume will reach major proportions.
The use of epoxy resins as modifiers for Monsanto's line of thermosetting products Is definitely the most promising immediate means of utilizing the properties of epoxies. These modifica tions are essentially patent free and In certain areas viz. phenolic-protein adhesives, offer interesting products.
IV. RECOMMENDATIONS:
1. Monsanto should not enter the field of epoxies as a resin produoer.
2. Tetrachloro-bia-phenol-A, hydrolyzed Aroclors and similar dlhydric aromatics are definitely attractive raw materials for epoxies and the program now In effect at Organic and Dayton for developing these products should be encouraged.
3. The use of epoxy resinB and epoxy chemistry In thermosetting systems based on phenol, melamine, etc., is worthy of de tailed study.
4. If manufacture of eplchlorohydrln and its related by-products Is ever considered, the manufacture of epoxy resins will war rant re-examinatlon.
V. PATENT STATUS:
A patent application is pending on the process for the production of the diglycldyl ether of tetrachlorobisphenol-A and the ether.
A patent disclosure claiming the process for the preparation of the glycldyl ether mixture of hydrolyzed Aroclor 1262 has been filed.
The results of a fairly complete patent search are summarized below:
Manufacture: Monsanto can -- manufacture epoxy reslna based on phenolic lump resins, tetrachloroblsphenol-A, and mixtures of TCBPA with BPA within certain limits.
Monsanto can not - develop a competitive line of epoxy resins based on BPA without infringement.
Use: Monsanto can - Incorporate epoxy resins in phenolic-protein ad hesive mixtures and probably prepare resins by reaotlng epichlorohydrin with water solutions of the sodium salts of methylol phenols (highly alkaline, liquid phenolic resins).
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STLCOPCB4095059
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Blend epoxy resins with melamine, urea and phenolic resins within certain limits. Ternary blends are mostly free of Infringement. Blend gpoxy resins with polyurethanes, nylons, acrylonitrile, acrylamide, furans, rubber, sulfonated or carboxylated styrenes.
Curing:
Monsanto can
develop specific curing systems and obtain patents,
Monsanto can not - cure with well Imown curing agents including carboxylic acids, anhydrides, sulfonic acids (and their chlorides). Isocyanates, Isothiocyanates, poly alcohols, phenolic hydroxyl groups or phosphoric acid. Many specific curing agents are
covered which Include amines, polyamides, amides, etc.
It may be concluded that the most fruitful area for circumventing existing patents Is the synthesis of epoxy resins based on pheno lic lump resins and from mixtures of BPA and TCBPA.
VI. REFERENCES:
Approved by:
________________ _
ft.M.Dickey,Patent Dept.
(1) S. 0. Oreenlee, Symposium On Epoxy Resins, American
-----
Chemical Society Meeting, Atlantic City, September 1956.
(2) Memo, J. Dazzl (Dayton) to H. Mohrman (Springfield), 7/19/55 Aroclor Epoxy Resins.
(3) Memo, J. A. Herbig (Dayton) to H. C. Qodt (St. Louis) 3/1/56 - Tetrachlorobisphenol-A.
(4) Memo, J. Chunga to M. P. Drumm, 1/16/57 (Springfield) Economic Evaluation of Proposed Epoxy Resin Production.
(5) Memo, J. Chunga to M. P. Drumm, 1/28/57 (Springfield) Eoonomlc Evaluation of Glycerol Epoxide Resin Production.
(6) Memo, S. E. Oebura to M. P. Drumm, 4/6/56 (Springfield Composition of hydrolyzed Aroclor 1262 and its derivatives.
(7) Memo, J. A. Herbig (Dayton) to s. E. Gebura (Springfield), 1/10/56 - Epoxy Resins from Hydrolyzed Aroclor 1262.
(8) J. Pincke (Santa Clara) oral communication to M. P. Drumm.
(9) G. Brown (Seattle) oral communication to S. E. Oebura.
(10)
Memoranda, S. E. Gebura to (a) R. J. Schatz, 10/30/56, Epoxy Resin Patent Search. (b) R. L. Heider, 11/14/56, Manufacture of Epoxide Resins
from Blsphenol-A and Tetrachlorobisphenol-A. (c) R. L. Heider, 1/10/57, Curing of Epoxy Resins. (d) R. L. Heider, 1/17/57, Blends of Epoxies with other
Polymer systems. (e) R. L. Heider 1/22/57, Epoxidation of Phenolic resins.
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STLCOPCB4095060
Epichlorohydrin, Shell Chemical Corporation Technical Publication, p 7-
U. S. 2,324,483, example 2. Memorandum, J. Dazzi to S. E. Oebura, September 15# 1955# Modified Epoxy Resina.
U.S. 2% ,4<6I|7/*%,171# example IV. VJ I I f WAJ'ObttOL a
U.S. 2,615#007
U.S. 2,640,037# Polyether C. Plastics Division, Seattle
(15)
R. 0. Neville, Plastics Division, Seattle, Research Report
No. SE2265, October 10, 1956, The Synthesis of Aliphatic Epoxy Resins with Particular Reference to those prepared from Ethylene Olycol or Qlycerol.
(16) U.S. 2,260,753; 2,327,053; 2,010,726; 2,538,072.
___
(17) U.S. 2,512,996, Complex liquid Polyepoxide A.
(18) U.S. 2,581,464.
(19) J. L. Jungnlolcel, et al., Organic Analysis, Vol. I, Interscience, New York, 1953# P 136.
(20)
(21) (22)
H. H. Willard, et al.. Elementary Quantitative Analysis, D. Van Nostrand Company, Inc., 1940, p 185.
Reference (11), p 35-26.
N. I. sax. Handbook of Dangerous Materials, Reinhold Publishing Company, New York, 1951# P 157.
(23) Bisphenol-A, Monsanto Chemical Company Technical Data Sheet, April 10, 1956.
(24) Reference (22).
(25)
(26)
Shell Chemical Corporation Technical Bulletins SC: 55-69# SC: 55-29, SC:55-26R, SC:55-27, SC:56-l8.
Reference (22), p 54, 177-178.
(27) Reference (22), p 185.
(28) Reference (22), p 157.
(29) M. Terptra, St. Louis Data supplied with flash distilled hydrolyzed Aroclcr 1262.
STLCOPCB4095061
The syntheses of epoxy resins involve straight forward techni ques of reaction, neutralization, extraction and distillation. Common laboratory equipment designed for these purposes are
satisfactory.
All of these resins are synthesized according to similar pro cedures:
1. Reaction of epichlorohydrln with a polyhydric compound. This is generally exotharmic and careful control is required. The initial reaction products are chlorohydrin etuers.
__
2. Where an excess of epichlorohydrln 1b used, viz., in high epoxy containing products, the excess is recovered by
vacuum distillation.
9 3. The crude product is treated with exoess base and dehydrohalogenated to form the epoxy compounds.
4. Usually, several water washings are required to remove the inorganic salt and unreacted base.
5. The final product is dehydrated undor vacuum to a relatively high end temperature.
6. The products are characterized by analysis for epoxy oxygen, hydrolyzable chloride and ash. The results are translated into percents of diglyoidyl ether and ether chlorohydrins.
Detailed experimental procedures are given below for the prepara tion of all products synthesized in this study.
A. Apparatus
The reactions were carried out in standard laboratory equip ment except as Indicated under separate procedures. This consisted of a 3-necked flask fitted with a stirrer and two U-shaped adapters. The latter were fitted with two Fried richs condensers, a thermometer dipping into the reaction mixture and a stopper. The falsk was heated by a Olas-Col mantle. For the synthesis of the high epoxy containing products, an ice bath was always Included in the experimental
t I ***
`f ** f1
STLCOPCB4095062
4- z. zS-,U
.H I TCBPA
The initial condensation of TCBrA with ECH is highly exothermic: it In absolutely neceaaary to have an ice-H20 bath ready when running thia action.
TCBPA (1281 g, 7 eq.) and 1298 & ECH (13-8
100* XS) were
mixed and heated with atirring to 84. The procedure and obaerva-
tiona were aa follows:
Time (Min.) Temp, (*C)
Remarka
84 The Glas-Col mantle waa removed. 185 cc of NaOH atook aoln (7*7 N) were
added at once (1.42 eq).
99-IOO
The system refluxed (2 phase reflux) An ice bath was applied intermittently to contain reaction but the temperature
waa held above 95**
Solid phase appeared (NaCl)
Reflux subsided
14 94 Heat waa supplied and the reaction mixture was held at 95-100 for 2.5
hours.
The excess ECH was then removed under a continually decreasing pressure and continually increasing temperature to a final pot temperature of 122 at 20-22 mm. 91-7* of the excess ECH waa
recovered.
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STLCOPCB4095063
To the residue from the distillation (at 110-111*) were added 819 co NaOH at00It soln. (7-7 N, 6.3 eq., 10* overall excess). The mixture cooled to 82*. The mixture was reheated to 112 a.id kept in the range 110-113* for 8.75 hours. The mixture was allowed to cool over approximately 2 hours. During the reaction with NaOH and cooling, samples of the aqueous phase were removed and analyzed for total alkalinity. The results are shown in Graph I.
The resin was then washed with H2O. Hot water was added and the mixture heated to 95-102 and kept In this range for 1/2 hour. The mixture was then cooled to about 65-75* end the H2O decanted, The first wash was with 750 ml H2O and the succeeding 4 washes were 1000 ml each. The washes were analyzed for chloride and hydroxyl ions. The results are shown in Table I.
TABLE I
Wash No.
Total eg. Cl
Total eg. OH
4.97 I.70 0.22 0.02 0.01
0.35 0.12
0.013 0.002 Neutral to Litmus
The product was then dehydrated under vacuum as described below:
Time (Min.)
Terop.(Pot *C) Pressure (MM)
Remarks
0 90 -- Vacuum applied.
Varlac at 80V.
5
65
ca-70-8o
The mass was too
viscous, the vacuum
was released and the
mass was reheated.
10
80
120-125
Distillation was
satisfactory
15
65-70
120-125
Pressure was slowly
lowered
25
75 75
--
35
104 30
Varlac was set at
55V
60
125 25-30
Varlac was set at
45V
75
125 25-30
Distillation was
complete
The decrease in weight of the original mass was 138g (9# by weight of resin obtained).
The yield of produot was lo64g. The product was odorless, sligntly yellow and slightly cloudy and it crystallized slowly on standing at room temperature (m.p. 95-98*).
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STLCOPCB4095064
EQUIVALENTS NaOH, AQUEOUS PHASE
TIKE (Hours).
* * ' f * f t. * * f . * ' f
`ft * * f *
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-10-
Analysis:
Epoxy Oxygen: 6-39- WoVH.w Hydrolyzable Chloride Ash (1600*F): 0.00
The percentage yield was 99.05** The basis for calculating tne yield is given in the Appendix.
a nortion of the Droduot was filtered through a medium porosity fritted glass funnel at 130-145* under vacuum to give a perfectly clear, slightly yellow product. The filtration was a very slow
process.
(b) Isolation of solid dlglycidvl ether of TOBPA
A sample of dehydrated tacky product, 458 g, was melted and poured slowly into 1500 cc ice cooled methanol witn vigorous stirring. The mixture was then stirred for 1.75 hours at room temperature. The mixture was filtered. The solid was tritura
ted under a small portion of MeOH and filtered. The solid was dried at room temperature overnight. The filtrates were evapora
ted to dryness to yield a residue of 25g. (5 *^5*)* After drying overnight, the solid was warmed at 50-60* and dried in a desico&tor under vacuum for several days. The yield of white free flowing powder was 4l8g. [92%).
A similar result was obtained using ethanol as a solvent: Melting point range: 93-98*0.
Analysis:
Epoxy oxygen: 6.525* (97-43* DOE) Hydrolyzable cnloride: 0.165* (1.2?* DOMH) Ash (1600F): 0.0195*
The infra red spectrum of this product is shown in Appendix D.
(c) Isolation of initial condensation product
The same procedure described for the preparation of the diglycidyl ether of TCBA, through the recovery of excess ECH was followed, using 103g TCBPA (1 eq) and l85g (2 eq) ECH. Cooling was not necessary but nevertheless, an lce-H20 bath was kept handy. A one liter flask was used for the experiment.
To the residue at about 100* were added 300 cc dioxane (purified by refluxing with solid KOH and distilling). The mixture was filtered and the dioxane filtrate distilled at 30-40 mm to a pot temperature of 120-130. Yield: 269 g.
Analysis:
Epoxy Oxygen: 1.11, 1.133* Hydrolyzable Chloride: 10.70, 10.495*
*t 1
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(d) Preparation of the dlglycldyl ether of TCBPA In. dloxane solvent
To the product obtained aa above (228g) were added 400 cc dloxane and the product dlaaolved by warning and then finally heated at 97-98*. To the aolutlon were added 104cc NaOH aolutlon (7*5 N, 31.2g NaOH, 10% excess). The temperature dropped to 76. The two phase system was heated to reflux at 92-93 and refluxed for 9.5 hours. During refluxing NaCl precipitated, rue mixture was cooled and filtered. The filtrate waa pourod Into a separatory funnel and the lower aqueous layer withdrawn at room temperature. The upper dloxane layer was transferred to a flask and the dloxane distilled off at 30-40ram to a final pot tempera
ture of about 125*C. Yield: 198g (97.5*).
Analysis:
Epoxy Oxygen: 6.45, 6.4956 Hydrolyzable Chloride: 0.30#
Ash: 0.00 (1600*P)
(e) Preparation of Qlycldyl Polyethcra
This Involves the reaction of ECH with TCBFA in tuc iQOiar ratiO 2 to 1. TCBPA (183 g, l/2m) was mixed with ECH (92.5 6, lm) and warmed to 100*. The mantle was removed and to the solution were added 45 cc of 7.5 N NaOH solution (13.5s, 0.336 eq). The tem perature dropped to 95* and almost immediately rose to reflux at 105-106" (pot temperature). The procedure and observations were as follows:
Time (Min) Temp (Pot, *C)
Remarks
0
105-106
Refluxing
3
--
Mixture turned cloudy
12 95 Heat supplied to maintain the
reaction mass at 95-105
13 95 50.5cc 7.5 N NaOH solution added (15.2g, 0.38 eq). Temperature
dropped to 84*. The mass was
reneated to 95-105*.
61 97 50.5 co 7.5 N NaOH solution added (IO36 excess). Tempera
ture dropped to 87*. The mass
was reheated to 95-105*.
136
105-110
The reaction was discontinued.
The taffy like product was washed twice with 300 co water at 95-100*, 1/2 hour for each wash. The water washes analyzed 0.974 eq chloride ion.
The residue from the wash was dehydrated under vacuum (30-40 mm)
to a final pot temperature of 138*C. The resin was a slightly
yellow, slightly cloudy soft solid at room temperature. Yield
230 g (96.436)
Analysis: Epoxy Oxygen: 5.34, 5.353*
................
Hydrolyzable Chloride: 0.4l, 0.3656
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-12-
(f) Reaction of ECH With TCBPA In the molar ratio 1^57. to. !
This reaction was carried out In a ateam Jacketed laboratory kettle normally used for preparation of phenol-formaldehyde resins. The speed of the anchor agitator was about 40 RPM. To the kettle were charged 1830 g (5 m) TCBPA and 3880 g of 10* (by weight) NsOH solution. The mixture was stirred and warmed to 45* by circulating 100* HoO in the jacket. At a batch temperature of 45*, 726g (7.86m) ECH were charged rapidly to the kettle. The temperature slowly rose to ^4* when a clear solution was obtained. Within five minutes the mixture turned cloudy and the temperature rrse rapidly to reflux. The reflux stopped at four minutes. Steam was cir culated In the Jacket and the mixture brought to reflux and kept at reflux for about 80 minutes. The aqueous phase was decanted and the resin given 4 one-hour water-washes at 95-100* with 4000 cc HoO. The washed resin was dehydrated under vacuum, first at about 310 mm and finally at about 40 mm to a final pot tempera ture of about 150-l60*c. Yield: 2065g (about 90*). The resin was a yellowish and almost clear brittle solid at room temperature.
Analysis: Epoxy Oxygen: 2.41, 2.38*
(s) of Resins from Mixtures of TnT~BPA----- ------------------------
TCBPA (9.15g, 0.05 eq), BPA, (108.3, 0.95 eq) and ECH (92-5 g, 1 eq) were mixed and heated to 40*. To the mixture were added 67oc NaOH solution (0.15 g NaOR/cc). The temperature rose rapidly and within five minutes the solution olouded. After 10 minutes stirring, 67 cc NaOH solution wer* added and the mixture heated to reflux (101-102*, Pot Temp). After 25 minutes at reflux, 80 cc NaOH solution (0.3g NaOH/cc) were added and the mixture heated to reflux (108-109*). After 1/2 hour, the mass was cooled to 60* and the aqueous phase was decante '. The resin was washed with H2O at 90-100* until neutral to litmus and practically free of cnloride ion. The resin was dehydrated under vacuum to a final pot tempera ture of 150*C at 34 mm. Yield 159 &* The product was yellowiBh, slightly cloudy and almost solid at room temperature.
Analysis: Epoxy Oxygen: 4.87, 4.87*
(h) Prepara.tMioaniu.o. f t_heJ---djl-a^.-glycerolmonochlorohydrln
This derivative was prepared from a mixture of DGMH and DOE by hydrolysis of the DOE present with aqueous HC1. The material used in the reaction Is described under Run No. 3 Table XII, and is refer red to as "substrate" below.
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To 250 cc dioxane was added 50cc 6NHC1 (2 excess ever DOE present) and the mixture was warmed to 50. To the mixture was added dropwise 100 g of substrate dissolved in 200 cc dioxane. No vigorous reaction was observed after the addition of about 15 cc. The mixture was heated to 85-92* and the rest of the substrate was added dropwlse over 1.25 hours. After complete addition, the mixture was heated at 92* for 1/2 hour. Dioxane was distilled off to a pot--temperature of 115* at 760 mm during 2.5 hours. The residual cloudy mixture was washed, twice with 400 cc portions of H2O at 70-90" for 0.5 hours each wash. The wash H2O from the second wash was neutral to litmus. After decanting the wash H2O, the residue was dehydrated to a final pot temperature of 136* at about 20 mm. Yield: llOg.
Analysis: Calod. for C21H22CI604: Hydrolyzable Chloride: 12.8656
Pound: Hydrolyzable Chloride, 12.4856
The infra-red spectrum of this product is given in Appendix D.
The product showed no tendency toward gellatlon on mixing with trlethylenetetramlne and heating at 160*C for 5 minutes.
The resin had a dry rubber of 15 seconds at 150"C with triethylenetetramlne.
(2) Hydrolyzed Aroclor 1262
(a) Preparation of the Olyoldyl Ether Mixture of Hydrolyzed Aroclor 126<? in Moxane Solution
The addition reaction of hydrolyzed Aroclor 1262 and spichlorohydrln (ECH) Is highly exothermic. An ice bath should always be handy when attempting this reaction.
To a five liter flask, adapted as already described were charged 1326g (6 eq) hydrolyzed Aroclor 1262 and 1116 g (12 eq, IOO56 excess) ECH. The mixture was wanned to 75* The procedure and observations were as follows:
DSW 621040
STLCOPCB4095069
14-
Tlme (Min.)
1 3 5
9 9-5
11 11-5 13 21 38
Temp. (Pot, *C) 76
B* 85 90 92 97-98 99-100
100 101 99
'
Remarka
Olas-Col mantle removed; 47.6g NaOH was charged (1.19 eq) aa a solution whose normality was about 7-5*
The reaction was moderated with the Ice bath in ouch a manner that the reaction mixture was at 95-101.
NaCl started precipitating.
The reaction was discontinued and
the ayeteTM adapted for vacuum
distillation for recovery of
-
excess ECH and H2O.
The reaction mixture was subjected to distillation at 30-40 mm to a final pot temperature of 102*.
The distillate was a 2-phase system
Lower phase: Upper phase:
481 g. 173 g.
The temperature of the distillate was 11.5*. At this temperature, the lower phase Is 9&-7% ECH and the upper phase is c.5> ECH (Ref. 11). The distillate therefore contained 486g. ECH and 162 g H2O.
The distillation was continued to a pot temperature of 105* at 1-2 xn; 43g of a single phase distillate were obtained. The total ECH
recovery was 528.5 g. This was 95Jt of the excess used if the stoichiometric amount reacted to form the product.
The residue froa the distillation was dissolved in 2003 g. dloxane (purified by refluxing with KOH pellets and distilling). The mix ture was filtered and the filtrate was returned to the flask and warmed to 90~95*C. To It were sdded 693 co of 7.5 N NaOH solution (5.2 eq, 10 excess). The temperature dropped to 75*. The mixture was reheated to reflux (92) and refluxed for 3.25 hours. During this time NaCl precipitated and the system finally consisted of 2 liquid phases and a solid phase. The mixture was cooled to 51* and filtered, and the filter cake washed with 100 cc dloxane.
DSW 621041
f*
STLCOPCB4095070
-15-
Tt.e filtrate was placed In a separatory funnel and tne layers separated after removing an additional small amount of NaCl which precipitated as the dioxane cooled. The lower dioxane layer was withdrawn, placed In the separatory funnel and allowed to stand overnight. During this time an additional email amount of aqueous phase (upper layer) separated out.' The dioxane layer was separated and the dioxane distilled off at 40-45 mm to a pot temperature of 105* and finally at 2 mm to a pot temperature of 135*C. The yield of pale yellow, slightly cloudy resin was about 1625 g. (101*).
Analysis: Epoxy Oxygen: 5*55, 5-54# Hydrolyzable Chloride: 0.15, 0.17*
(b) Isolation of the Intermediate Reaction Product in
the Reaction of Hydrolyzed Aroclor l2b2 and
~'
Excess eH. ~
The same procedure was used as described under (1) through the solution of Che product in dioxane and filtration, using 8 equi
valents of hydrolyzed Aroclor 1262 and 1.6 eq NaOH (as a 7-5 N NaOH solution).
The dioxane solution was subjected to vacuum distillation to a pot temperature of 100* at 34-37 mm and t.ien to 127*C at 2 nan. Yield: 2296 g.
Analysis:
Epoxy Oxygen: 1.15*, 1.14* Hydrolyzable Chloride: 9.01, 9-14*
Ash (1600*P): 0.00*
The theoretical epoxy oxygen for the glycldyl ether of hydrolyzed Aroclor 1262 la 5.76* and the theoretical hydrolyzable chloride content of the -glycerolmonochlorohydrln is 11.3* (Appendix).
The above product therefore has a glycldyl ether equivalent per centage of ia4 x l00 m 19.0gt
and a chlorohydrln equivalent percentage of 9.07 as the average Cl analyses.
X 100 - 80.2*,
(c) Preparation of Qlycldyl Ether (OE) Mixtures of
Hydrolyzed Aroolor~lgo2 Containing Various Per
centages of fens gl -glycerolmonochlorohydrln
--J1 ~)erlvativeB.
using
To prepare ti.ese mixtures, dioxane solutions containing the Initial addition product were reacted with a limited amount of NaOH, cal culated to give the approximate amount of dehydrochlorlnatlon desired.
Example: To prepare a mixture composed of about 70* OMH and 30* OE.
Dioxane solution (785 g) containing 487 g. adduct (9-29* hydrolyz able chloride - 82.3* QMH) wqs diluted with one liter of dioxane and
heated at 85-90* with 7*6 g NaOH.In 15cc H2O for 1/2 hour.
y . * >, *4 .-V-.
DSW 621042
STLCOPCB4095071
-16-
Tht mixture was filtered and the filtrate subjected to vacuum distillation to recover the product as previously described. Yield: 417 g
Analysis: Epoxy Oxygen: 1.50, 1.52# Hydrolyzable Chloride: 8.32, 8.19#
1ST By calculations described on pngs Bf. tne product 1 73# OMH and 26# OE. In the above example, the amount of NaOH tt be used was calculated as follows:
487 x 0.113 x -12x 40^ 7>6t; Na0H
35"5 x 0.97
where 487 grams resin, 11.3# * theoretical hydrolyzable chloride for the OMH, 12# - percentage by which the chloride should be re duced, 40 - mol. weight NaOH, 35-5 equivalent weight chloride ion and 97# = purity of NaOH.
(d) Preparation of a Qlycldyl Polyether of Hydrolyzed
Aroclor 1262 .
:
To a one liter flask, adapted as already described, were charged 238.S a (1 .nfl <j) hydrolyzed Aroclor 1262 and ICC g (1.08 aq) ECH. The mixture was warmed to 77* and the procedure followed and ob servations made are given below:
Time (Min.)
Temperature (Pot, *c)
Remarks
0
2 4.5 6 12 17
77*
90* 100" 102 105 100
Olas-Col mantle removed, 53 of 7.5 N N80H solution were added.
The system waa refluxing The solution turned cloudy
Olas-Col mantle was replaced and the mixture heated.
To the mixture at 103* were added 53 cc 7.5 N NaOH solution and the mixture was heated at 105-110 for 1/2 hour. At the end of this time 53 cc 7.5 N NaOH solution were charged (10# overall excess) and the mixture was heated at about 110" for one hour. The resin was then washed twice with 300 cc of boiling water for 35 min. each time. The water was removed by decantation. The washed resin was dehydrated to a final pot temperature of 130 at 30-40 mm. The resin was cooled slightly and dissolved in 300 cc methyl ethyl ketone. The mixture was filtered and the filtrate subjected to distillation under vacuum (30-40 mm) to a final pot temperature of about 125-130. The resin waa pale yellow, slightly cloudy and brittle at room temperature. Yield 287 g.
Analysis: Epoxy Oxygen: 3.935* Hydrolyzable Chloride: 0.31#
DSW 621043
STLCOPCB4095072
-17-
() Reaction of a Basic Solution of Hgdroly zed
Arocl6f~Ig62~wlt'K"fi<5H~<fteT. I
Hydrolyzed Aroclor 1262 (662 g, 3-02 eq) was dissolved with heating in a solution of NaOH 120.8 g, (3-02 eq) dissolved in
885 co H^O (12% by weight) and heated to 65. The ECH was then added dropwlse and the following observations were made:
Time (Min.)
Temperature, *C ml ECH added
Remarks
0 65 0 Heat off. Olaa-Col
mantle and flask.
ECH addition started 5 65 9 -------11 66 20
18 67 39 Glas-Col mantle
removed.
26 67 54 Mixture getting
viscous
34 67 -- -- Mixture turned
lighter in color___ .
4o 67 75
55 67 100 A whitish viscous
mass was obtained.
65 68 125 The mass was more
viscous.
80
67-65
150 The mass solidified
and could not be
stirred.
The theoretical amount of ECH required for an equivalent ration was
230 cc. Therefore 65 of the required ECH was added (175.5 g, 1.9 q) The reacting molar ratio BCH/hydrolyzed Aroclor 1262 was 1.9/1' ..887 - l1..c0*2. This ratio was much too low to produce a satisfactory product.
A small portion of the product was washed by trituration under H2O and air dried; it contained only 0.9656 epoxy oxygen.
(3) Bisphenol-A (BPA)
(a) Liquid Resins (Bpon 828 type)
BPA 570 g, 2.5m), 929.5 g (10.04m, IOO56 excess) ECH and 15 cc H2O (1J6 by weight of reactants) were charged to a 5 liter flask, adapted as already described. The mixture was warmed to 75. To the solution were added 40 g (0.97 m) NaOH pellets. The procedure and observations were as follows:
DSW 621044
STLCOPCB4095073
Remarks
0 12 13
19 20
22
25
26 27 29 31.5
32.5 39
43-5
46 50
'
75 91 99-10!
95 93
91 66
96 97 93 88-89
97 89
98.5
99 96.5
40g NaOH were added Olas-Col -maotle was removed The mixture refluxed slightly.
40g (0.97 m) NaOH were added. The temperature rose rapidly to 99-100. The mixture was cooled with an ice bath to 91. The NaOH pellets were com pletely diSBolved. 40 g (0.97 m} Nidi TSllCtS were added. The mixture refluxed The mixture refluxed
40g (0.97 tn) NaOH pellets were added The mixture refluxed 50.5 g (1.22 tn) NaOH pellcto were added (2% overall excess) The mixture refluxed. It was cooled to 95 The mixture refluxed The mantle was replaced and the mixture was heated to reflux.
The reaction mixture was allowed to reflux for 0.75 hours. The
system was then adapted for vacuum distillation. The H2O and
excess ECH were distilled off first at about 200 mm to pot tem
perature of 97* and then at about 95 mm to a pot temperature of
160*. The two phase distillate, 409.5 g lower laver and 89g upper
layer, was calculated to contain 409-3 g ECH and 89.4 g H2O. The
ECH consumed in the reaction was 929-5 - 409-3 g " 520.2 g (5-62 m)
and the H2O formed was 89.4 - 15 - 74.4 g (4.15m). The apparent
reacting molar ratio ECH/fePA was 5-62/2.5 - 2.24. The residue was
cooled to 100* and washed as follows.
Method of
Wash
g-
No. HoO
Temp., Time
Removing Wash
*C. (hrs.) HoO and temp.
gHpO
Remarks
1161 1016 1007
995 1022
100-102 1
52-74
1/2
55 1/2
60-75
1/2
95-100 1/2
Syphoned off (100*) Decanted (74*)
1359g 796
Decanted (55*)
907
Decanted (750
990
Separatory Funnel (95*100*) 1066
1013 95-100 1/2
Separatory
12l4g
Funnel (95-100*)
Clear wash Hg V. cloudy wash H2O V. cloudy wash H2O
Cloudy wash H2O
Practically clear wash HoO Clear H20
DSW 621045
STLCOPCB4095074
^ -19-
The Mashed resin was dehydrated under vacuum first at about 310 mm
to a pot temperature of 115* and then at about 95 mm to a pot
temperature of 168.
Weight distillate: 195 g.
Yield of Resin:
827 g (9256)
Analysis: Epoxy Oxygen: 7.24*
Hydrolyzable Chloride:
1.13*
Epoxide equivalent:
221
__liT~?tn--,sn .-m---m--- -z*v rn .z.x^.
Small Scale
BPA, (114 g. 0.5 m) was mixed with a solution of NaOH 38.8 g (0.97 m) in 340 cc HpO in a one liter flask, adapted sb already described, and heatea. The procedure and observations were as follows:
Time (Min) Temperature (Pot *C)
Remarks
25 Variae was set at 50 V. A slur^=. ry was present.
Variae was set at 40 V.
72-5 g (0.784 m) ECH were
--
charged rapidly.
Practically all solids were In solution. The solution was turning cloudy.
Resinous material started forming.
59 97
Variae was set at 60 V. A moderately viscous material was present. Variae was set at 40 V.
The mixture was heated at 97-100* for an additional 80 minutes. The mixture was cooled to about 70* and the aqueous phase was decanted. Volume 319 cc. The resin was washed with 400 co portions of H2O each at 101-102* for 20 minutes eacn wash. After each wash
the mixture was cooled to 70-75* and the aqueous phase was decanted. The reouj.es are as follows:
Wash Ho.
VjI. Decanted
Original Aq phase 1
319 415 390 400
8$
OH .teal
0.025 0.002 0.000
-
Cl (meg)
650.76 108.06
8.697 0.6&0 0.134
DSW 621046
1 1
t*
t 1{!
f
STLCOPCB4095075
-20-
The total chloride Ion analysis was 0.77 eq. Tni compared with O.78 equivalents of chloride introduced as ECH.
The washed resin was dehydrated by distilling off the H2O at 760 mm to a pot temperature of 125" and then to 165 at 40 mm. Yields l49g. The resin was yellowish and slightly cloudy.
Analysis: Epoxy Oxygen: 3.10, 3*12$ Average 3*11$
EpWAidc Ev^uiValvut * 515
Kvdrs!
n oh.<t mgy
The hydrolyzable chloride analysis was based on the fact that only 0.01 eq ECH was not accounted for in the wash HgO. This is 35.5 x 0,01 - 0.355 g of chlorine in 149 g resin or 0.238$.
Large Scale
For this experiment a 22 liter laboratory scale reactor was used. This consisted of a 22 liter wide neck flask on which was fitted a head through tne center of which passed a stirrer shaft and which__ was adapted for carrying a reflux condenser, a thermocouple well, and a stopper. The flask was heated by a Olas-Col mantle.
To the flask were charged 2280 g (10 m) BPA and 776 g (18.82 m) NaOH dissolved in 7756 g H2O. The slurry was heated to 45 and 1450 g (15.69 m) ECH were charged rapidly. The mixture cleared and almost immediately started turning cloudy. Within 20 minutes the temperature rose to 100*. During this time t.-e resin phase formed starting first as globules and gradually coalescing into a continuous mass. The mixture was held at 100-101" for an additional 1.5 hours. The resin phase was allowed to settle (about 4 minutes) and the aqueous phase was decanted. Weight, 8428 g. The resin phase was washed five times with about 8000 g portions of H2O at about 100* for 1/52 hour each wash. The H2O phase was in each case decanted at about 95-100*. The results of the washing are given in Table II.
TABLE II
Wash No.
H2O HgO Charged (g) Decanted (g)
Analysis Cl (eq)
OH (eq)
Net H20 Weight *1
1 8047 2 8206 3 824s 4 8028
5 8256 2
6934 8250 8324 7715
S3.
O.832 0.180 0.054
0.018
0.007 14.340
0.180 0.050 0.000
-
3.t-2-2
6878 8238 8321 7714 7905
Z45
Totals
15 430
3 528 46514
Obtained by subtracting from the gross weight of alkaline, aellnt H2O its analyzed equivalent of NaCl and NaOH. *2 Initial H2O phase decanted from the reaction mixture.
STLCOPCB4095076
The hyirolyzable chioriae content of the resin was calculated on tne basis that 15.69 - 15.43 0.26 eq chloride was not accounted for. This equaled 35-5 x 0.26 - 9.24 g Cl In 3002 g resin which equals 0.30#.
MATERIAL BALANCE
Charged
Discharged Difference
Percent Difference
Cl OH H20 Total
Hass
15.69 eq
15.43 eq
10.82 eq*l 18.96 eq
48,816 g48,276 g
53,044 g
52,320 g
-0.26 eq +0.14 eq -540 g -724 g
1.66# 0.74# 1.1# 1.36#
1 Calculated as 97# minimum NaOH *2 This figure includes 278 g H2O produced In the reaction
(15.43 eq).
The less of chlorine is probably too high and the figures given
are on the assumption that the ECH used was 100# pure. The fcCH
used was not analyzed before use because a satisfactory method was not available.
Losses taking place during manipulations (by spillage. Incomplete transfers, evaporation losses) were considered the chief reasons for the lack of complete recovery of materials.
VIII. DISCUSSION;
(A) Reaction of excess ECH with (a) TCBPA, (B) hydrolyzed Aroclor 1262, (C) blsphenol-A, (D) preparation of polymeric epoxides from these pnenols. (E) Additionally, although practically no work was done on the preparation of epoxies from glycerol, a section is included which notes relevant factors of this preparation. (F) Economic evaluation of (C) and (D).
(A) Reaction of Excess ECH with TCBPA
When a limited- amount of aqueous NaOH was added to a solution of
TCBPA in at least 100# excess ECH at temperatures above 55* the following reaction took place exothermically:
STLCOPCB4095077
-22-
a./'
X 4 2 A. -C >;
N-voM .
(t' +Lj 1. < An v*,l\
rCC
( L
^cu, c
t H, Uj ... m. ^/
m
Ot /`-I fl
This reaction proceeded to completion very rapidly when the equi valent ratio NaOH/TCBPA was between 0.05 - 0.20 and the relative amounts of II and III produced depended on thlB ratio. At the end of this Initial addition reaction, excess ECH and H2O were distilled off and the residue was dehydrochlorinated to give a nigh yield of II, contaminated with traces of III. Table XII (Appendix) lists the results for all the runs made.
__
The reactions of TCBPA or hydrolyzed Aroclor 1262 with excess ECH do not follow the same pattern aB the reaction of BPA with excess ECH. The reactions of these diphenol3 with limited amounts of ECH are probably the same however. This will be evident from the data given in the discussion. It is therefore convenient to dis cuss the experimental work as follows:
For an optimum yield of II, and an optimum recovery of excess ECH, several variables were recognized: (1) ECH/TCBPA ratio, (2) NaOH/TCBPA (3) temperature and (4) concentration of NaOH.
(1) For the preparation of II the equivalent ratio ECH/TCBPA must be 2/1 or greater. At a lower ratio, polymer forma tion would undoubtedly take place. Higher ratios would have no effect on the nature of the produot, but heat dissipation from the exothermic reaction would be much
better.
(2) Graph II shows the exothermic rise of temperature of the reaction mixture when various amounts of aqueous NaOH were added to a solution of TCBPA in excess ECH at the same initial temperature. It 1b seen that as the ratio NaOH/TCBPA Increased from 0.05 to 0.80, the reaction becomes increasingly uncontrollable because of the rapid rise in temperature, oraph III shows the effect of this increasing ratio on the total analysis of the products obtained. The inflections in the curve are considered
to be meaningless; given a more accurate method of analyses, the inflections would probably disappear. This comparison was useful because the departure from 100J6 analysis
DSW 621049
STLCOPCB4095078
I IORAPH
TIXK (Jljaut)
STLCOPCB4095079
STLCOPCB4095080
-23-
lndicafced polymer formation. A very adverse effect at high NaOH/TCHPA ratios was the simultaneous destruc tion of *<JH, as Indicated by lowered recoveries of excess ECH.
(3) At a constant NaOH/TCBPA ratio of 0.2/1, the temperature at which the NaOH solution was added had very little effect, if any, on the nature of the products obtained Delow i00', duc does effect the ELnotiici-ui. Graph IV illustrates the latter point. For each temperature used in this set of experiments, the product had a very high percentage of II. Above about 100 however, it was noted that the recovery of excess ECH was lower, indicating that ECH was destroyed at the higher temperature.
(4) The concentration of NaOH used In the preparation pro cedure is Important in the recovery of excess ECH from the reaction mixture. ECH is recovered by distillation of the two phase system ECH-HgO from the reaction mixture. Since ECH is soluble in HgO to a slight extent, the lower the ccLjcentratiori oi NavH, me ..^guer is the less of ECH to H2O phase for a constant amount of NaOH used. From an economic standpoint, therefore, the concentration of NaOH should be high, if the aqueous phase from the distillation is to be discarded.
The second phase of the reaction, the dehydrochlorlnation of the adduct obtained with caustic solution after recovery of excess ECH, has not been extensively studied. The approximate speed of HC1 elimination was shown in Graph I under Experimental Procedures (p 10-11). Considerable improvement In the rate could undoubtedly be obtained by an increase in the percentage of excess NaOH used or by counter-current techniques.
The washing of the product obtained was alBo a slow process, and improvements could be introduced; washing by the counter current technique would be much more efficient.
The product as obtained by dehydration was always somewhat cloudy. It is thought that this la due to the presence of traces of HoO. Prolonged heating during dehydration would reduce the H2O content of the product but it would appear that drying with a thin film evaporator would be more efficient.
The product could, of course, be Isolated with the aid of organic solvento, such as benzene; although this would be a much more rapid process, the necessity for solvent recovery units would be disadvantageous.
(B) Reaction of Excess ECH wltn Hydrolyzed Aroclor 1262
The same considerations which were discussed under (a) are ap plicable to the preparation of the glycldyl ether mixture of hy-
DSW 621052
STLCOPCB4095081
GRAPH IV
(M lnutin)
STLCOPCB4095082
-25-
VII, by reaction with the excess ECH present and additional i NaOH added, may react again to yield the chlorohydrin derivative.
Thus in the case of BPA, it is not possible to perform the Initial addition reaction, recover the excess ECH and then react tne pro duct obtained with caustic (as with TCBPA). An excess of ECH must be present throughout the course of addition of NaOh. If one proceeds with EPA as with TCBPA using ths equivalent iatiu NaOH/fePA ratio 0.3, then the product is not a high epoxy con taining material but one which has an epoxide equivalent of about 400. [The epoxide equivalent of V is 170).
The above observations were made in conjunction with experimental
work being performed on TCBPA. When a program for obtaining cost
estimates for the production of BPA epoxies was initiated, the
processes described in the patent literature were followed. In
the process for the preparation of Epon 828 type resins (Ref 13),
solid caustic is added in portions to a solution of BPA in 150%
excess ECH and containing about 1% H2O. Upon completion of
--
caustic addition the excess ECH is recovered by distillation
and the product is isolated from benzene. Although the process
is capaole of reproduction, it was decided that in this study,
the benzene system would be eliminated.
In the process which was studied during this program, BPA was
dissolved in 100% excess ECH and 1% (by weight of reactants) HgO was added. To this solution, starting at 75* NaOH pellets were added in 5 portions in the equivalent ratio NaOH/BPA * 0.194 for four additions, and a final portion of 0.244 (2% overall excess). During the additions, the mixture was cooled with an Ice-HgO bath In order to maintain the reaction mixture at about 95-100. The excess ECH was recovered by distillation, the residue was washed with HpO and the washed resin dehydrated under vacuum. The product obtained by this process was an amber colored fluid resin whose hydrolyzable chloride content was about twice that of the commercial product (1.1% vs. 0.5%). From the analytical data it was shown that by further dehydrochlorinatlon of this product (X to 0.5% Cl), Epon 828 would result. In one experiment, an attempt was made to reduce this content by introducing caustic (5% excess) into the first H2O wash but the attempt was unsuccess ful since a part of the product gelled during the washing cycle.
Because of limited time spent on thlB process and because the
data obtained were somewhat inconclusive, future work should in corporate the following ideas.
(a) It is believed that 100% excess of *-CH Is sufficient for obtaining the proper product but that for better heat control it may be necessary to go as high as 150%.
Graph V Illustrates the temperature variations during the reaction cycle using 100% excess ECH.
DSW 621054
t*
STLCOPCB4095083
-26-
(b) The method of caustic addition ia probably satiofactory, but it may be necessary to increase the time between additions in order to effect better dehydrochlorlnation.
(c) The recovery of excess ECH by distillation is considered satisfactory.
(d) The washing and removal of wash waters should be con
ducted at about 9"l00oC. Some additional work may be desirable with respect to addition of caustic to the first wash (a smaller excess than in tne case given above) with the idea of effecting a part of the dehydro chlorination here.
(e) Since the products obtained by dehydration were slightly cloudy, i.e. H2O may have been present, it may be nscss* sary to prolong the dehydration or to revert to a thin
film evaporator.
The aualjraiD should be expand ^ - ~ A ^ 1 ,
hydroxyl
determination and molecular weight determination. The
former would especially be useful In obtaining a more
precise determination of the ECH requirements of the
process.
(D) Preparation of Polymeric Epoxides
The processes followed for the preparation of polymeric epoxides were those described in the patent literature (Ref 14). In these processes the nature of the product is determined predominently by the molar ratios ECH/^PA and NaOH/ECH, and the manner of addition of the caustic. Qraphs VI and VTI illustrate the varia tion of epoxide equivalents and softening points of resins with the variable ratio ECH/BPA.
For the preparation of solid type resins from BPA the synthesis of lipon 1001 was undertaken. For the preparation of this resin the molar ECH/BPA ratio was 1.57 and the NaOH/ECH ratio was about 1.25. The preparation procedure consisted of dispersing BPA in the caustic (10jt), heating to about 45*, and charging the ECH rapidly to BPA-caustic mixture. The tempera ,-e was allowed to rise to about 95-100 (heat supplied) and kept at this range for about 80 minutes. The product was washed with hot water, dehydra ted under vacuum and discharged from the flask while hot. In this procedure, the following variables were recognized: (a) ECH/BPA ratio, and NaOH/ECH ratio, (b) rate of addition of ECH, and rate of stirring, (c) heating period, (d) washing cycle (e) dehydration and (f) yield. Additionally, (g) concentration of caustic must be considered because this factor determines the capacity of the charge. These variables are treated separately below.
(a) Molar ratio ECH/BPA and Molar ratio NaOH/ECH
The ratio ECH/BPA - 1-57 and the ratio NaOH/ECH - 1.25 was chosen
DSW 621056
STLCOPCB4095085
Bpox3.de i-q u lv a x e n t
f * f
STLCOPCB4095086
--I---- ,__________ ":7"rT t~ Nuabprati llnpil ]alDn oirdinata : _r__p__T_^L__Ln-i.t:o_U_I__* 1. - poinvi of
iahti|JtooH_ .
'
;fr ^onpt^nt
1,-Varlabli
~0r-^7
XJ1
/:
----- 1----Ui"_i. ; i i-
ii
rrr*
-/j|_ I
--
----! i ' (
:
/
:~TMr I
T :
/ ~i....I""'
f:f ( ! :
K o la r R a tio ECF/fePA
i*
STLCOPCB4095087
Por the preparation of the r.op*et epoxide equivalent resin, the ECH must be charged rapidly and the stirring should be very efficient- The reactions which are probably "balanced" In the whole process are (a) addition reaction of ECH with BPA and the polymers formed and (b) the addition reaction of BPA with the BPA glycldyl etners formed. It is thought that slow addition of ECH or Inefficient stirring would emphasize reaction (b) and lead to a product whose epoxide equivalent la too high. This is somewhat borne out by the scale up to a laboratory kettle of the BPA charge from 1/2 m to 10 m, to a kettle, where in the last two
t.hw Rtirrlng was not aa efficient an In the 1/9 m runs. The-
epoxide equivalent for those runs was higher than in the 1/2 m runs, where the correct equivalent was obtained.
Table III shows the results from these runs.
TABLE III
Scale and Equipment
1/2 o Common lab Common lab
22 1 reactor 22 1 reactor
gal. lab kettle m. g&l. lab kettle
$ Epoxy Oxygen (average)
3-22 3.11 2.87 2.78 2.60 2.48
Epoxide Equivalent
493 515 557 575 615 645
(c) The neatlng period
A heating period of 80 minutes was found to be satisfactory for obtaining a product whose hydrolyzable chloride content was very
low and comparable to the commercial product. No attempts were made to reduce this
(d) Washing cycle
The factors considered in the washing cycle were (1) temperature
of washing and at decantation and (2) volume of wash water used and (3) time of washing; (2) and (3) were important from the standpoint of capacity.
(1) It was found by trial and error that the most efficient pro cess was in washing at a temperature of 95-100 and decanting as
DSW 621059
f
STLCOPCB4095088
-20-
as soon as the resin settled. Very clear wash waters could be decanted using this procedure in contrast to considerable cloudiness when decantation waa carried out at lower temperature.
(2) No study was made of the efficiency of washing with reepect to volume of water used per wash. It wsb found however that the volume could be reduced from 8000 cc to 4000 cc on the basis of a 10 m BPA run for a resin yield of about 3000 g.
(3) The time factor was not studied either. Washes of one-haif hour each wei-e chosen arbitrarily. This element could easily be determined by removing aliquots of wash at various time in tervals and analyzing for chloride and hydride ions. From these data a time limit for most efficient washing could be chosen.
(e) Dehydration
The washed resin retained about 50$6 H2O by weight of resin ob tained. It is thought that the dehydration as carried out under reduced pressure (the latter waa determined bv the softening point, of the resin, about 75) represents the limit available with this process. A significant improvement could be introduced however by the use of a tmn film evaporator from the standpoint of continuous operation and perhaps obtainment of a clearer product.
(f) Yield
This factor is difficult to evaluate properly and no attempts were made in this study to determine the reasons for the ap proximately 9556 yields obtained; it would appear that the yields should be almost quantitative. Some resin was definitely lost to the wash waters (as suspended material, probably not greater than ljj). The best guess would be that the loss in yield is in the BPA, by virtue of its contaminants (e.g. phenol, but only a small percent) and by its Incomplete reaction end removal as the sodium salt in the wash waters. The latter could certainly be quantitatively ascertained by analyeis of the waeh waters for BPA.
IfiL. Concentration of Caustic
It is easily seen that the use of 10<f> caustic limits the capacity of this process severely. Since this is the concentration used in the patent processes, it waa used in this study. A few "spot" experiments using 30 and 20St caustic were unsuccessful, the re action mass being unatlrr&ble. It appeared from these experiments that about l4-l6j* caustic may be the workable limit with the pre sent process. Although the effect of concentrated caustic on the resin is not known it would appear to be small since in the preparation of Epon 020 type resins, very concentrated caustic is present in the preparation mixture without any drastic loss of epoxy groups.
DSW 621060
*1 t '' \'
STLCOPCB4095089
In this laboratory no Btudy was made. Include a section in this report on the chemistry of this pre paration since an economic survey was made on this basis. The chemistry in turn was to a good extent deduced from data given
in the patent literature (Ref 16).
Epoxides from glycerol have reached only the developmental stage;
the resin available from Shell is Epon 562. This resin is pre
pared by the bulk reaction of ECH and glycerol in the presence
of about
by weight of reactants of BF3ET2O (Ref 17) followed
by dehydrochlorination by salts sucn as NaAl02, NaZnC2, Na2S103
in an organic solvent such as dioxane. The inorganic salts are
filtered off and the solvent is distilled to recover the resin.
The tr.eoretical reactions are as follows:
STLCOPCB4095090
The above reactions are complicated by Interfering reactions, such as polymerization of ECH by BF3, further reaction of I with ECH, hydrolysis of II by H2O, and by products arising from the in complete reaction of glycerol and ECH.
lc is intei-eraling to compare the properties of Epon 562 with tne stoichiometry of this preparation. The reaction of equivalent quantities of ECH and glycerol followed by reaction with excess MaAlC-2 should yield approximately equivalent quantities of epoxy oxygen in the product, i.e., the epoxide equivalent of the product should be about 87. The commercial product has an epoxide equivalent of about 145 indicating that undoubtedly the resin contains a large percentage chlorine. This may be due to an in complete reaction of NaAlOg with the chloronydrins or the fact tnat chlorine atoms are present whose functionality is not like that of the chlorohydrin, i.e., they are not as easily removed as HC1 (Ref 18). These views must be taken into consideration if any additional work for the preparation of glycidyl ethers of polyols is undertaken Dy Monsanto.
(F) Economic Evaluation of the Production of Epon 562, 828 and TOOl" Type "Resins---------------^------------------------------------- ----- ------------
This section contains a summary of the work performed by J. Chunga of Division Engineering (Ref 4, 5), M. F. Drumm and the writer. It includes;
(Si Production of Epons 562, 828 and 1001. (Mr. J. Chunga) Flow diagrams for the production of these resins. iMr. J. Chunga) <0 onographs showing variable returns on investment for
variable cost of BIA and ECH and variable selling prices of resins. (Dr. M. F. Drumm and Dr. S. E. Gebura)
Production of Epons 562, 828 and 1001.
Table IV - Facility A. 1,000,000 lbs/yr Epon 828 and . 3,000,000 lbs/yr Epon 1001.
Table V - Facility B. 3,000,000 lbs/yr Epon 828 and 5.000.000 lbs/yr Epon 1001.
Table VI - Faoility C and D. 1,000,000 and 3,000,000 lbs/yr Epon 562.
Table VII- Facility E, F and G 20,000,000 lbs/yr Epon 828, 20.000.000 lbs/yr Epon 1001 and 20,000,000 lbs/yr Epon 562.
STLCOPCB4095091
Epo;. 82^ Production
Annual Net Sales
Quantity, lbs. Unit price, list.$/lb, Freight charge, $/lb. Net Price, $/lb. Amount ANS
,000,000 0.80 0.01
0.79 790,00
Cost of Goods Sold Manufacturing Raw Materials Direct Conversion Depreciation Indirect Conversion Packaging St Shipping Royalties of 5J< AOS
Total Cost Goods Sold
425.60
91.01 17.21 24 .63 20.00 40.00 618.45
Gross Profit Deduct SARE at 10% ANS
171.65 79.00
Net Income Before Taxes
Income Taxes at 5036 Net Income Before Taxes
92.55 46.28
Earnings After Taxes
46.27
CAPITAL ESTIMATE SUMMARY
FACILITY "A" (in Thousands of Dollars)
New Property to be Installed; Building M&E
New Fixed Capital
26.4 202.0 22S74-
Share Existing Property: at 30% NFC
Total Fixed Capital
Working Capital Inventory All Others at 1$% ANS
Total Working Capital Total Operating Investment
Return on Investment
68.5
296.9
66.8 118.
18
apoii 1001 Production
3,000,000 0.605 0.010 0.595
1785.00
1179.90 133.11 26.82 38.10 30.00 90.75
1498.68 286.32 178.50 107.82
53.91
53.91
26.4 122.0 uTBTT
104.6 453-0
173.0 267.8
STLCOPCB4095092
-32-
TABLE V
ANNUAL PROFIT AND LOSS STATEMENT FACILITY "B"
(in Thousands of Dollars)
Epon 828 Production
1. Annual Net Sales Quantity, lbs.
Unit pric, list Freight Charge, Net price, %/lb. Amount ANS
3,000,000 0.800 0.010
0.790 2370.00
2. Cost of Goods Sold Manufacturing Raw Materials Direct conversion Depreciation Indirect conversion Packaging and Shipping Royalties at 556 AOS
Total Cost Goods Sold
1276.80 149.22 2u.4y
4Ct/Vr1\ .4ru\3rv\ 120.00 1667.94
3. Qross Profit 4. Deduct SARE at 10j6 ANS 5. Net Income Before Taxes 6. Income Taxes at 5056 Net
Income Before Taxes
7. Earnings after Taxes
...........
702,06 237.00 465.06 232.53
232.53
CAPITAL ESTIMATE SUMMARY FACILITY "B"
A. New Property to be Installed: Building M * E^
New Fixed Capital
44.6 44.6
m
B. Share Existing Property at 3056 NFC
C. Total Fixed Capital
D. Working Capital Inventory All others at 1556 ANS
Total Working Capital
83.6 362.7
189.2 m
E. Total Operating Investment
P. Return on Investment
25.656
Epon 1001 Production
3,000,000 0.603 0.010 0.595
2975.00
1966.50
216.15 41.40 e5r9\ .0r\0r\
151.25 2484.30
490.70 297.50 193.20
96.60
96.60
44.6 44.6 495.0
161.9
701.5
289.2 446.0 "735TS
6.756
! ' **
DSW 621064
** STLCOPCB4095093
Case A Case B Case C
to.90/lb., list $1.00/lb., list $1.10/lb., list
As was anticipated, the price range chosen was sufficient to
Indicate the sales conditions for poor and good returns on investment.
STLCOPCB4095094
(In Thousands of Dollars)
1. Annual Net Sales
Quantity, lbs.
Unit price, list $/lb Case A
Case B
Case C
Freight charge, $/lb
Net price, $/lb
Cas...e
A n
Case C
Amount ANS
Case A
Case B
Case C
.2 Cost of Goods Sold
Manufacturing
Raw materials
Direct conversion
Depreciation
Indirect conversion
Packaging Royalties
Sc Shipping at 5# AGS
Case Case
Case
A
B C
"otal Cost Ooods Sold
Case A Case B Case C
Case A
Case B Case C
Gross Profit
Case A Case B Case C
Deduct SAKE at 10# ANS
Case A
Case B Case C
Facility C
1,000,000 0.90 1.00 1.10 0.01 0.89 0 00 i.09
890.00 990.00 1090.00
617.70 109.69
27.05
27.66 27.84 28.02 20.00
45.00 50.00 55.00
847.30 852.48 857.66
42.70 137.52 232,34
89.OO 99.00 109.00
Facility D
3,000,000 0.90 1.00 1.10 0.01 0.89 n on 1 !o9
2670.00 2970.00 3270.00
1853.10 172.38 39.96
52.44 53.01 53.55 60.00
135-00 150.00 165.00
2312.88 2328.45 2343.99
357.12 641.55 926.01
267.00 297.00 327.00
DSW 621066
STLCOPCB4095095
ANNUAL PROFIT AND LOSS STATEMENT (Continued)
5. Net Income Before Taxes
Case A Case B Case C
6. Income Taxes at 50% Net Income Before Taxes :
Case A Case B Case C
7- Earnings After Taxes
Case A Case B Case C
Facility C
None 38.52 123.34
19.26 61.67
^--^ 19.26 61.67
Facility D
90.12 344.55 599.01
45.06 172.28 299.51
45.06 172.27 299.50
STLCOPCB4095096
(In Thousands of Dollars)
Facility C
Hew Froperty to be Installed: Building M&E "
New Fixed Capital
60.0
308.5 3EBT5
Share Existing Property: at 30$f NFC
110.6
Tc wG 1 O < y Pori ho)
47Q.1
D. Working Capital
Inventory All Others ,at 16% ANS
Case A Case B Case C
75. 133-5 148.5 TEjzf
Total Working Capital
Case A
Case B Case C
209.2 22TT2
Case A Case B Case C.
688.3 703.3 718.3
Case A Case B Case C
no return 2.7% 8.6%
Facility D 97.0
452.0
164.7 713.7
400. W*
1336.8 1381.8 1426.8
STLCOPCB4095097
Epon 828 Production
A. Annual Net Sales
Quantity, lba. Uni', price, Hat. $/lb. Freight charge, $/lb. Net prloe, $/lb. Amount ANS
2Q,000,000 0.80 0.01
0.79 15,800
B. Coat of Goods Sold
Manufacturing
Haw Materials Direct Conversion Depreciation Indirect Conversion Packaging and Shipping Royalties at 5* AOS
3,512 A60 64
126 400 800
Total Coat Goods Soli
10,36?
C . Oross Profit
5, *38
D. Deduot SARE at 10* ANS
1,580
E. Net Income Before Taxes
3,858
?. Income Taxes at 50*
1,929
Net Income Before Taxes
G. Earninna After Taxes
1,929
Epon 1001 Production
Epon 562 Production
20,000,000
0.605 0.010
0.595 11,900
2>j, 000,000 1.00 0.01 0.99
19,800
--
7,8*6 440 96 120 200 605
9,327
2,573
1,190
1,383
692
98 160 400 1,000
14,592
5,208
1,980
3,228
1,614
691 1,614
DSW 621069
**
STLCOPCB4095098
-33-
CAP1TAL ESTIMATE SUMMARY (Tn Fir\ 1 T ar*fl }
20,000,000 pounds per year
Epon 828
Epon iOOl Spon 562
Production Production Production
A. New Property to be Installed:
Building M&E
New Fixed Capital
83 n2
815
61 1.140
1,201
302 1,410
1,712
B. Share Exlatlng Property:
at 30* NFC
244
360
514
C. Total Fixed Capital: D. Working Capital!
1,059
1,561
2,226
Inventory All Others at 15# ANS
1,241 2^68
Total Working Capital
3,609
E. Total Operating Investment: 4,668
P. Return on Investment:
41*
1.151 1*786 2,945 ^,506
155^
1,484 2.970 4,454
6,680 24*
STLCOPCB4095099
STLCOPCB4095100
STLCOPCB4095101
i'
23
STLCOPCB4095102
Coat o f E p ich lo i*o h yd rin , (i/lb .
Cost o f B isphenol-Jt, 4 /lb .
iC ost o f E p io h lo ro h y d rin , / l b
STLCOPCB4095103
A one-cent drop in selling price reduces return on Investment by 0.6 percentage points.
Net Return on Investment After Tax of 50$
35 T
T 30
Coat o f E p lc h lo ro h y d rln In Cents Per Pound Cost o f Q ly c e ro l In Cents Per Pound
STLCOPCB4095104
<0(<r
XI. MATERIAL SPECIFICATIONS. ANALYTICAL PROCEDURE:
Source of Katerlala:
Hydrolyzed Aroclor 1262. This material was prepared from Aroclor 1262 which ia a chlorinated biphenyl. Flash distilled hydrolyzed Aroclor 1262 (Monsanto, St. Louis) was used. The ItyIpical material was a glass at room temperature which analyzed
.83# chlorine and which had an equivalent weight of 221.
Tetrachlorobisphenol-A. Monsanto, St. Louis, Lot No. 22046. Bisphenol-A. Monsanto, St. LouIb.
Epichlorohydrin. Shell Development Corporation, 98# min. NaOH. Mallinckrodt, Analytical Reagent, 97# min.
r>-- A .
opeuri4iluau. trifllD-- i rnitu_ --c JU6 VC*X U|^llcu v rt 1ia_ ip__o__i'_d4-VUl'JI
ses fc^ epoxy resins from BPA was directed to producing
products with the following specifications.
u~vc-o"
Liquid resins (Epon 828 type)
Solid Resina (Epon 1001 type) `
Liquid Resins from Glycerol (Epon 562 type)
Epoxide Equivalent: 190-210
__
Hydrolyzable Chloride: 0.5#
Epoxide equivalent: 450-525
Hydrolyzable Chloride: 0.256 Max.
Epoxide Equivalent: 140-165
Aromatic Chlorine - The aromatic chlorine content of the products obtained from hydrolyzed Aroclor 1262 was determined at Dayton under the direction of Dr. John Dazzi.
Epoxy Oxygen - The procedure followed for epoxy oxygen determina tion was the standard pyridine hydrochloride method (Ref. 19).
Apparatus - 100 ml single neck RB flasks, reflux condensers.
Reagentb - About 0.2 N pyridine hydrochloride solution prepared by diluting l6cc cored HC1 1 lei to 1000 ml Volume with Fischer
certified Reagent pyridine; about 0.1N standard NaOH, phenolphthaleln indicator.
Reactions
R0CH2CH-CH2 + It,
HC1 I
II (Excess)
Pyridine Reflux /
R0CH2CK - CH2 I
OH
II (Excess) + NaOH
NaCl + H20 -7*
DSW 621076
STLCOPCB4095105
-40-
Prooedure
The pyridine hydroohloride was compared with standard NaOH using, phenolphthalein indicator. The volume of NaOH required for 25cc
of reagent was recorded. (A)
The sample to be analyzed was weighed directly into a flask. To the flaak were added boiling chips and 25 cc reagent. The flask was warmed slowly and swirled occasionally to dissolve the sar;p?.c The solution was refluxed for 1/2 hour. The flask was cooled in an ice - H2O bath. Pour drops of phenolphthalein were added and the solution was titrated with standard NaOH to the pink end point. During the titration the flask was kept in an ice H2O bath. The volume of NaOH used was recorded (B). The percent
epoxy oxygen was calculated from the equation
St Epoxy Oxygen
a(A-B) N X 0.016 x 100
1 U-- a I
JV.&. /1
where N is the normality of the NaOH
Hydrolyzable Chloride
The procedure described here was not applicable to solid resins from BPA because of their insolubility in ethanol.
Hydrolyzable chloride was determined by converting the organic chloride into soluble inorganic chloride and analyzing by the Volhard method (Ref 20).
Apparatus - The equipment used for epoxy oxygen analysis was also used here.
Reagents - Standard AgNOo and KSCN, PeS04, KNO3 (6N), nitrobenzene and approximately 0.5 N ethanolic KOH.
Reactions - ROCHoCH - CHo I OH
STLCOPCB4095106
-41-
heated and swirled occasionally to affect solution. The mixture was then refluxed for one hour. During the reflux the mixture was swirled oooasionally in order to keep the mass well dispersed in the ethanollc solution. The mixture was cooled, diluted with 10-15 cc distilled HgO and acidified with HNO3. The soluble
chloride was analyzed by Fhe Volhard method.
% Hydrolyzable Chloride
(C-D) x 0.03546 x 100 weight sample (is)
where C - ml AgNO^ used x its normality
and D - ml KSCN used x its normality
XII. TOXICITY AND HAZARDS:
(1) Epichlorohydrln (ECH)
Epichlorohydrln may polymerize violently in the presence of acldi . catalysts. Caution must be observed In order that large volumes of ECH do not come in contact with these catalysts (Ref 21).
BlBpnenol-A
-
Bisphenol-A is moderately irritating to the skin and eyes. It should be removed from the skin with soap and water and flushed from the eyes with clean water, if contact occurs. Oral LD50 to rats is 6.5 g per kilo. The chemical is not considered hazardous to handle, but contact should be avoided or promptly remedied as above (Ref 23).
Tetrachloroblsphenol-A and Hydrolyzed Aroclor 1262
The toxicity of tnese new materials is unknown. It may be as sumed that the precautions used for working with phenol Itself can be applied here. For phenol, the liquid or solutions are very corrosive to the akin. Phenol is readily absorbed through the skin and mucous membranes, it can also be absorbed through the lungs as gastrointestinal treact. After absorption the toxic effects are exerted primarily upon the central nervous system but following sufficient exposure, there can be edema of the lungs, kidney, liver, pancreas and spleen. Exposure to toxic amounts usually results in death in a few hours (Ref 24).
Blsphenol-A Epoxides
Studies to determine acute toxicity have shown that the resins (Epon type) are practically non toxic. The oral administration of more than 6cc liquid resin (Epon 834 type) per kilo of body weight was tolerated by white mice without symptoms. There was no hazard from vapor exposure. The solid resins (Epon 1001 type' present no hazard whatever in ordinary industrial use.
DSW 621078
STLCOPCB4095107
&>'* i
-42-
Cases ol dermatitis among workura haudlin,, liquid resins (Epons 828, 834, 562) have established that the latter will cause ski'i irritation in hypersensitive individuals. In t..e normal indiv-ciual, andling methods which minimize skin contact would ordinarily suf
fice as a precautionary measure. The latter includes gloves, i.eavy aprons and full face shields. In case of contact protective creams, such products as Merphenex, Acid Mantle and Kerodex have
been found beneficial (Ref 25).
Tetrachloroblaphenol-A and Hydrolyzed Aroclor 1262 Epoxides
The toxicity of these new materials is unknown. It may be assumed tnat the precautions necessary for handling bisphenol-A epoxide resins are applicable here also.
BP3 - Etnerate
This material is flammable and can cause explosions. It is easily
inhaled because it is volatile. It is toxic. The fluoride con
tent of this material renders it an irritant to the skin, eyes and
mucous membranes. The material should be used in closed systems,
if possible. Personnel exposed to it should wear protective
__
clothing, safety goggles and a respirator. The material should
be stored in a ooql place out of direct rays of the sun away from
areas regarded as acute fire nazards (Ref 26).
Olycerol
A combustible liquid and a moderate fire hazard. It is considered relatively non toxic. It can cause iritis, slight internal con gestion and Blight necrosis. Personnel who handle large quantities
should proteot the eyes with chemical safety goggltB. To fight fires of this aterial, water (fog or spray), oarbon dioxide, carbon tetrachloride and dry chemical may be used (Ref 27)
Pioxane
A flammable liquid and dangerous fire hazard. The liquid is dangerous to the eyes and can cause lackrymatlon. One of the earliest symptoms of intoxication is misty vision. It also produces irritation of the lungs and prolonged exposure can cause narcosis. It has insidious long range effects and prolonged exposure can produce damage to the liver and kidneys. Toxic amounts may be absorbed througn the skin. It is capable of forming peroxides and it can explode when distilled.
Dloxane snould be used in closed systems or with adequate exhaust ventilation. For protection of the eyes personnel should wear chemical safety goggles. If the concentration is over 50 ppm, a respirator should be worn. It should bs stored in a cool, well ventilated place away from acute fire hazard or powerful oxidizing agents. To fight fires of this material carbon dioxide, carbon betrachlorl.de and dry chemical may be used (Ref 28).
DSW 621079
STLCOPCB4095108
Dayton: St. Louis:
ring) H. Kelly (Patent Dept.), G. Adams and P. Shapras (Infra-Red Spectra).
J. Dazzl and J. Herblg
M. Terpstra and R. Cass
r\ Witnessed by
/jw
ft. P. iSrumra, Group Leader
XIV: APPENDIX:
The conclusions drawn from the U.S. patent survey concerning epoxy resins are given below. The report on this survey will be Issued separately.
It should be noted that purchase of epoxide resins permits their curing or blending without patent infringement.
Manufacture of Resins
Monsanto can manufacture, without patent infringement, resins from bisphenol-A (BPA) by reactions where the molar ratio of eplchlorohydrin (ECH) to BPA is 1.6 - 1.9 to 2.1 to 3.9- These ratios give products whose properties are such that they would not provide a competitive line of epoxide resins and result In a narrow range of properties. Patents prevent the manufacture of resins from BPA by reactions where the molar ratio of ECH to BPA is 1.1 - 1.5, 2.0 or 4.0 or greater. A variety of resins from tetrachlorobisphenol-A (TCBP-A) or mixtures of TCBPA and BPA can be manufactured which oould very well be competitive in the epoxide resin field.
Patents prevent the manufacture of monomeric glyoidyl ethere from polyhydrlc phenols where the molar ratio of ECH to polyhydrlc phenol is 4.0 or greater. Resins of high molecular weight cannot be pro-
STLCOPCB4095109
duced from low molecular weight resins or monomeric glycidyl ethers by further reaotlon with dlhydrlc phenols without patent Infringement. The production of the adduct of glycerol and ECH In the presence of fluorine containing catalysts Is claimed by patents. Monsanto oan produce this adduct however. In the pre sence of other acid aotlng catalysts, eg. FeCl3, H2SO4 etc.
Monsanto cannot produoe the epoxide resin derived from this adduct by hydrochlorlnatlng It with sodium aluminate, zlncate or silicate in an organio solvent. It may be possible to prepare this resin by other dehydroohlorinating processes, whether a particular process Infringes the patent literature will be determined by toe nature of the product obtained, i.e. its chloride content and type of chloride.
No patents were found whloh claim the processes or products of the epoxidation of phenol aldehyde novolaca. Since this is being done commercially in England, British patents may exist and may be copending In the U. S.
Although the epoxidation of the alkali salts of methylol phenols
la covered by only a single patent, it is thought that this patent
could be troublesome. The claims would tend to include the
--
Monsanto West Coast resinB which have a high content of monomeric
methylol phenols. The claims do not include the polymerio one
stage phenol formaldehyde resins.
Curing
The patent literature describes a large number of curing reagents. For the moat part theae are specific reagents for which specific advantages are claimed. Monsanto could, therefore, easily enter Into the field of utilization of hardeners by developing new curing systems or specific curing reagents possessing superior properties to those disclosed so far. The functional groups which are not oompletely blocked by the patent literature include amine, carboxy
lic add, mercaptan, amide aldehyde, ketone, and various combina tions of these functional groups or their derivatives. Patents prevent the use of hardeners which contain in general one to three
of the functional groups carboxylic acid anhydride, sulfuric acids or their chlorides. Isocyanate, isothiocyanate, polyol (containing at least two primary OH), phenolic hydroxyl, phosphoric acids and derivatives. - In addition Monsanto may not use the specific curing reagents which are listed in Table VIII.
Blende of Epoxide Resina
(a) phenol, melamine or urea aldehyde condensates. The patent situation concerning the blending of epoxide reslne with aldehyde condensates of phenol, melamine or urea is extremely complex. It is not possible to state any definite conclusions with respect to these blends until a thorough examination of the situation by the patent department is made. With this reservation, it is
DSW 621081
*
STLCOPCB4095110
irww-
5-* -
possible to reach the following conclusions: (a) Monsanto can formulate ternary or higher blends which may be Improvements on the binary systems covered In the patents; (b) In a limited number of cases, it may be possible to formulate binary blends which fall outside the patented limits of components; (c) patents prevent the formulation of higher blends of epoxides with these condensates which are listed in Table IX. (b) Other polymeric systems - Monsanto cannot utilise those blends of epoxies with other polymeric systems which are listed in Table X. The blends of polymeric systems with epoxies which have not been uncovered in the patent survey include polyurethane. Nylon type, acrylonitrile, acrylamide, furan, thlokol, rubber, vinylidene cyanide sulfonated or carboxylated styrene, terephthallc and isophthalic acid types and various copolymeric systems which are not listed in the tables.
STLCOPCB4095111
STLCOPCB4095112
STLCOPCB4095113
R - a t le a s t 14 C atoms
X* group capable
re a c tin g w ith epoxide
group
STLCOPCB4095114
STLCOPCB4095115
j f rU .3 . P a te n t
Number o f
Type o f
----- Bo,------------ Sate------- C laim s---------- agent--------------------------- Rangeg p o jc ld e _____________
2,717,885 9/13/55 *
BP3 s a lt o f amines
N.S.
P h e n o lic
Iaph i , ^ ^
R alkyl, phenyl - k- OH, alkoxy . 1-2 - n 0.01-3 - * +
(b) tsrephthallo or lao phthallo acids or lower alkyl esters
(0) glycerin
U.S. Patent No.
2., 528, 360
2,5ai,>il
2,521,912
2,687,397
2,730,467
Date Ho. of Claims
10/31/50 21
9/12/50 13
9/12/50 7
8/2vs*
9
1/10/56
3
TABLE Q
Type of Epoxide
PHP
PHP
A
Blend of Epoxide with
Alkylated condensate of aldehyde and amines or amides polyhydrlc phenol
Phenol-aldehyde condensate
alkaline catalyst .
Phenol-aldehyde condensate
PHP PHP
alkaline catalyst
ITrea-CHgO condensate Neutral salt of amine and a sulfonic acid amine; ETgHH, ET3N, 1-Rt^HH, aniline, pyridine, morpholine cetyldlmethylamine
-Urea^CHgQ condensate epoxide ^ JCH-CHp
R3-{j^-(CB20H)n
2,703,765
If- 2,631,138
2,687,396
2.637,716 2,637,715 : 2,458,796
3/8/55
14
3AO/33 12
8/24/54 2
5{5A3
5/5/53 15
1/11/49 21
BPA BPA
PH? PHP
Z-(CHa)x n-1-3
Solvent
alkyl, aryl
Butylated urea-CHgO, me1amineCHgO, or propylated urea - CHpO condensates Sslicylle acid, ^-chloro ealioyllo acid, aoetyl salicylic aold
Alkylated-urea -- CHpO
'
condensate
Hydrocarbon containing
1-3 SO3H or SO{>CL groupn
1. A phenol -CH2O resin reaction product of
2. (a) RTffSiXy0u-(a-j--n)
R- alkyl or phenyl
X- OH, alkoxy
m 1-2, n- 0.01-3
(b)
CO2H
COgH
0" 0 CO2B
COp2HH
or lower esters (c) glyoerin
Polybaslc carboxyic acid or anhydride; polyamine alkyl ether of CHgO condensate of phenol, urea, melamine or dlcyandlamiae '<
Polybaslc acid or anhydride dloyandiaml de alkyl ether of CH^O condensate of phenol, urea, melamine or dioyandlaside
Dlcyandlamide; ether of CHpO condensate of urea, phenol, melamine or dicyandiamld*
60-80* N.S.
N.3. H.B. -
N.S.
5-2016
60-8016 (10-3056 epoxide)
1/B - 6/5 equivalent N.S.
1/0 - 6/5 equivalent
0.06 - 0.6 m.
N.S.
DSW 621087
STLCOPCB4095116
V4 Fitat Ho.
2,511.913 2.494,295 2,707,177
2,705,223 2,699,413
8,602,785 2,596,737
2,591,539
2,542,664 2,502,145 2,604,464
2,662,870
2,736,717
2,713,565 2,689,834 2,626,223 2,742,448 2,687,398
Pate Ho. of Claims 6/20/50
lk 1/10/50
6 k/z6/55
20
3/29/55 12
1/11/55
T/Sf*
5/lg/52
AA/52 2
2/20/51
8/28/50 8
7/22/52 10
12A 5/53 10
2/28/56
7/lg/55
9/21/5** 2
1/20/53 Ik
4/1J/56 8/24/54
5"JL
trp* of
Bland of Epoxide with
PHP Aldehyde-aromatic amine condensate
PHP Aldehyde-an*matlc sulfonamide condensate
A Trlally1cyanureta PHP
Trlallyloyanurete Plastisol of a vinyl halide
resin or vinyl oopolymrti
A Poly***ric polyamide PHP containing free amine and
carboxyl groups
DHP Alkaline condensation product
of ClUO and a mono or dlalkyl
phenol or mixtures
H3P0Jj
-
Solvent
DHP Polyvinyl ester of a . fatty acid
Unsat fatty . acid ester of an epox ide of a
HP
PHP Hor.ohaslc aold modified aliqrd aldehyde-amide or amine
condensate
25-7556 10-25S6 5-50% epoxide
A Phenol-vegetable oil
20 parts/18 epoxide
condensate (2il) containing
166 parts/16 epoxide
at least 2 phenolic OH
PHP Phenol-vegetable oil'' condensate (2:1) containing
at least 2 phenolic OH
50-50 3 parts epoxide to 1 of
condensate
DOE of BP A
Styrene-acryl lc acid o
methacrylic acid from at least 50 parts styrene aid
at least 5 parts aold Amine or quartenary ammonium compound
1 mole DOE for every two CO^H groups
0.5 by weight of copolymer
DHP Cooolymer of (a) styrer.e (50 parts)
One epoxide group for each CO2H group
(b) acrylic or methacrylic acid
(at least 5 parts)
(c) vinyl pyridine
(0.05-1-0 parts/100 parts (a b)
Hat. drying oil aold ester of an epoxide of
a DHP
halogen subst. styrenes
PHP
Polyvinylacetal resin 2 aDrenyloxybensene
containing 1-3 CHgOU roups
N.S N.S
0.2-356 H.S.
Epoxy ester (castor oil dehydrated acIds)
PHP Polyeater-amide
Containing 7-35^ polymerised | styrene
Reacted In ratios to give specified softening points
BPA Alkyl orthotitanate B-hydroxyaalne or polyuilne
H.S. N.S.
BPA Reaction product of (a) R^t3jX04-^pn)
70-9056
R- alkyl, phenyl - jc- OH, alkoxy
n- 1-2 - n- 0.01-3 + n<4 (b) terephthalic or Iso phthallc
acids or lower alkyl esters (c) glycerin
DSW 621088
STLCOPCB4095117
O.
n-
aNa
a
P0* HC*
HK4 J0
< p4i
a 3
O H-
1 3
O OO *(1t a
HV*
a <
*
a
o n
0 <t Ui
o 3" a
4 P-
1o
*
o3 aC t3
oa
9a c
j 4
<
4 3
O P*
(Vi
Pa-
4
4 a
Apa
av-
4 P
ct
^or 4
4 11
ao
o
OH a ro <4 rOoN
*i
4 P-
p ct O
O p
co-op-)- ,
a
cr C rr a
P 3 A O *1 P4 a.o c
*iP H-
a 4 a
PP p ct < WOO
P P ON3T t? am ct PP ......'0'>s'0`
Pfr: O 33 <P P 4 A
ON 3 <7 4 ** <7,0 4
tr c
HP P O
O ct < O O' 4 V * 4P
4 3 ct
tf.S. Patent No.
2,695,276 2,709,664
2,528,417 2,731.437
2,555,169 2,559,333
'$*=- 2,564,194
2,590,059
2,595,619 2,609,355
Pate No7~of
Cl&lmi
11/23/54 5
5/31/55 23
10/31/50
i/17/56
5/29/51 8
7/3/51 15
8/14/51 10
3/18/52 9
5/6/52 15
9/2/52 12-
-
Type of Epoxide
DHP
PHP
A PHP DOR of a blsphenol
A
Mixture of A and PHP
PHP
A PHP
A PHP
A
TABLE X - oon't
Blend of Epoxide with
Polymerlo ailafiol
Ratal coating let coat - A polyvinyl acetal 2nd coaC - Pigmented epoxide reain 3rd coat - Epoxide reaIn
Phenolic pitch
(t^a^H-C^S-R
0
R-(C2H40CH20C2Hj<SB)n -
C2H4OCU2OC2U4 -
Halogen containing organic subatance, M.W.>2000
Halogen confining organic aubatanoe, M.W.^2000
.
Organic material containing halogen, H.W.>l62
Organic natter containing 10-75)< halogen, M.W.>2000 Cadid.ua or alkaline earth aalt of a carboxylic acl'l
Halogen contlnlng polymer dlaaldea of carbonic acli and derivatives
Vinyl chloride oopolymera containing -at least. 70% EVC . ester of unsat alcdhol and a dicarboxyllc a'id containing an oleflnic bon'* Salt of a carbo^llc sell whose Ionization constant la less than that of phthallc add
DSW 621089
STLCOPCB4095118
-47-
Appendlx B;
Deflnitlons
Epoxide Equivalent. The epoxide equivalent wolght of an epoxy
resin la the weight of resin required to yield l6g (one equivalent) ,
of oxlrane oxygen. The value oa obtained by dividing 16 by the
--
analyzed percent of epoxy oxygen (E.O.) and multiplying by 100.
Epoxide Equivalent - ^
Equivalent weight to esterification. The weight of resin required to completely esterify bOg acetic acid or 280g Cl8 fatty acid is the equivalent welgnt to esterification.
Calculations
^ The viffid <.A i on l a 11 on e for the dlglycldyl
of TCBPA
and hydrolyzed Aroclor 1262 and for the polymeric resins are com
plex. The fuctors which were not considered in calculating the
yields are:
i . *- a ~ ~
l.s. pc.Cent of phenol
or phenolic derivatives present.
b) The purity of the eplchlorohydrin
Ic) The H2O content of the reslnc d) The hydroxyl analysis of the products
For the dlglycldyl ethers of TCBPA and hydrolyzed Aroclor 1262 it
was assumed that the material was 100# pure and that Its conversion
in the reaction was oraplete.
The extent of the conversion of the material to the dlglycldyl ether and to the corresponding chlorohydrin derivatives was deter mined by analysis for epoxy oxygen and hydrolyzable chloride. The expected yield was then compared with the actual yield.
Example
Referrinigg to the product obtained by the procedure given
on page (1' 0).
The epoxy oxygen and hydrolyzable chloride analysis were 6.39# and
0.47# (average) respectively. Assuming that only monomeric products
were formed, these values represent 6.^ x
m Q g^ conversion
to dlglycldyl ether and 0.47 n
derivative.
127BE "
conversion to the chlorohydrin
Since seven equivale .ts TCBPA were used and since the equivalent weights of the dlglycldyl ether and the corresponding chlorohydrin derivatives are 239 and 275*5 respectively, the expected yield for 100# conversion of TCBPA was
7 x 239 x 0.954 - 1596 g weight ether expected 7 x 275.5 x O.0365 70g weight chlorohydrin expected
l665g expected ylold
DSW 621090
STLCOPCB4095119
-48-
The actual
was l664g. The percentage yield was
1664 lbbh
X
100
;9.8#
For the polymeric solid resins, it w*s assumed that the materials were 100# pure were completely Incorporated into the product and that the molar amount of ECH used represented the molar amount of HC1 split off.
Example: Referring to the product, obtained b- the procedure des cribed on page (M. 4escrlbed en -page 20)
Expected Yield - 2280g (BPA) + l450g (15.69m) ECH
- (36.5 x 15.69) 6 HC1 - 3157g.
The actual yield was 3002g. The percentage yield was
X 100 - 95-2#
For the liquid resins from BPA, it was again assumed that 100# pure reaccants were used and that BPA was completely converted. It was also assumed that the ECH consumed in the reaction was in corporated into the product.
Example: Referring to the product obtained by the procedure des cribed on page (17 ex. 3).
The amount of ECH incorporated Into the product waB 520.2g (5-62M).
Of this amount 827 x .0113 ,, o.264m aPP*ared aa
in tne product
35.4
'
(827g) by virtue of its hydrolyzable chloride analysis. The amount
of HC1 to be split off was therefore 5-62 - 0.26 5-36m * 190g HC1.
The expected yield was therefore 570g BPA + 520g ECH - 190g HC1 900g. The actual yield was 827g- The percentage yield was there-
f0rC
* 100 - 92#.
Calculations for the Recovery of excess ECH.
The excess ECH was recovered by distillation from the reaction mixture of the two phase system ECH-H2O. The system was allowed to separate and its temperature was adjusted by warming under the hot water tap. The separate layers were then removed and weighed. The ECH and H2O contents of the phases were calculated on the basis of the table reproduced on following page (Ref 11).
f* f
DSW 621091
STLCOPCB4095120
Weight $ ECH
Temperature (*C)
Lower Layer
Upper Layer
0.0
10.0 20.0 25.0 30.2
98.91 98.74 9?:S
6.48 6.52 6.58
6.60
Calculations for the composition of Epon 828, 1001 and 1004 in terms of BPA and ECH.
By using the epoxide equivalent weight of resin and the equivalent weight to esterification, it was possible to approximate tne ratio ECH/BPA contained in the resin. For these calculations the following constants were used.
Epon Resin
Epoxide Equivalent
Average Ester Equivalent
19c--210
450--525 870--1025
200 85 488 145 947 190
lght of ECH incorporated into the resins
(a) Epon 828
Calculate the epoxy equivalence for the esterification equivalent (85g) from the epoxide equivalent of 200:
2$& * oA2 equivalents opoxy oxygen
This value is equivalent to 0.84 equivalents of hydroxyl to esteri fication. Therefore in the esterification equivalent 1-0.84 - 0.16' equivalents of hydroxyl is present from ECH Incorporated into the polymeric chain and chlorohydrin portion of the resin. The total equivalents ECH incorporated is therefore 0.42 + 0.16 - O.58 equivalents. Since 56 is the equivalent weight of ECH incorporated into the resin 56 x C.58 - 32.48g ECH equivalent in the resin
In 85g of resin, therefore, 85-32.5 - 52.5g (0.23m) BPA is in corporated .
The molar ratio ECH/BPA in the resin is therefore O.58 - 2.4
Proceeding in the same manner for Epons 1001 and 1004 the ECH/bPk ratio is found to be I.52 and 1.25 respectively.
DSW 621092
!*
STLCOPCB4095121
Blaphenol-A (Ref 23).
Empericaj. Formula:
Molecular Weight: Appearance: Melting Range:
C15H16O2
228.28 White flakes 150-155 (Solidification Range)
' !* '*
STLCOPCB4095122
STLCOPCB4095123
STLCOPCB4095124
STLCOPCB4095125
^Sy
-52-
Appendlx C;
Composition of Hydrolyzed Aroclor 1262 and lta Derivatives^
The nydrolysls of Aroclor 1262 at Dayton and St. Louis has ap parently produced a mixture of mono and dlhydroxy derivatives. Analysis for chlorine and equivalent weight has given results which Indicate strongly that the product is a mixture of hydroxy materials. To our knowledge, this has not been considered pre viously .
Considering hydrolyzed Aroclor 1262 as a mixture of mono and dlhydroxy products, the percentage composition can be calculated in terms of (a) its chlorine analysis and (b) its equivalent weignt. Prom these data, the theoretical aromatic chlorine content of the derivatives of hydrolyzed Aroclor 1262 can be calculated.
It Is also possible to visualize a reaction of hydrolyzed Aroclor 1262 to its glycldyl ether and chlorohydrin derivatives, lr. which structures are ignored and only the equivalent weight is con sidered. By reference to the chlorine analysis of hydrolyzed Aroclor 1262, the aromatic chlorine content of the glycldyl ether and chlorohydrin derivatives can be calculated.
From the calculations the following conclusions have been reacned:
a. The chlorine analysis and equivalent weight determination are in agreement with each other.
b. Hydrolyzed Aroclor 1262 may contain as much as 24# of the
monohydroxy derivative, according to calculations Laaed on the equivalent weight.
c. Calculations based on the chlorine analysis of hydrolyzed Aroclor 1262 gave a percentage composition from which the correct aromatic chlorine % for the derivatives could not be calculated. It was found, however, that only a small difference in the chlorine analysis of hydrolyzed Aroclor 1262 {about 1#) reflects a large difference in the per centage composition calculations.
Analytical data supplied with hydrolyzed Aroclor 1262:
# Cl: 48.83 Equivalent weight: 221
Reaction of hydrolyzed Aroclor 1262 to Its glycldyl ether.
Substrate #C1, 48.83 E.W'. 92.5
E.W., 221
-glycerolmonochlorohydrln (GMH)-HClv. -------- '
E.W., 313.5
Glycidyi ether (QE) E.W., 277
(1)
DSW 621097
' f*
STLCOPCB4095126
-53-
Calculatlon of per cent epoxy oxygen (E.O.) for G E and percent aliphatic chlorine in GMH, baaed on the HY 1262 equivalent weight 221 which 1b a determined value.
E.O. - 16 X 100 - 5.77
277
ft aliph. Cl - 55.46 X 100 - 11.31 ftrnr
The percent aromatic chlorine for GMH and GE was calculated by multiplying the percent chlorine found for hydrolyzed Aroclor 1262 by a factor indicating the increase in the E.W. of GMH and GE.
For GMH, * Aromatic Cl - 221 X 48.83 - 34.42
3TJ3
For GE, % Aromatic Cl - 221 X 48.83 38.85
277
Tne percent of GE in any mixture of GMH and GE ia found by divld:'.nfi_ the % E.O. found by *-he maximum value of E.O. possible.
56 GE % E.O. Found
5.77 --
The percent GMH ia similarly found by dividing % aliphatic chlorine found by the maximum value aliphatic chlorine possible.
% GMH - $6--AliprhnCrl--F-o-u-n-d'
The theoretical aromatic chlorine for any mixture of GMH and GE is the sum of the percent QE and QMH found in the mixture multiplied l the theoretical # Aromatic Cl for each component respectively.
For any mixture containing only GMH and GE:
% Aromatic Cl j# Aliphatic Chlorine Foundj ^4 42 +
EQ Foundft
.c Cl " Aliphatic Cl x 3.04 + 56 E.O. x 6 .73
Results: Sample
% E.O.
% Aliph Cl
% Aromatle Cl Calcd. Found*
;fd-3) FD-3A) FD-4)
FD-6B)
FD-7A) FD-8)
3.38 5.38 3.52
5.37 5.48 1.14
4.98
0.55 4.53 0.53 0.49 9.08
37.89 37.88 37.46
37.69 38.37 35.27
37.18 39.00 36.38
39.09 39.10
35.49
subtracting ^ Aiipn Cl found.
-0.71 +1.12 -1.08 +1.40
+0.73 +0.22
DSW 621098
itfitf
rsf{u4 soffit
STLCOPCB4095127
-54-
The fair agreement between the oaloulated and found values for aromatic Cl lndloatea that the analyzed perdent Cl and E.W. of hydrolyzed Aroclor 1262 are In agreement.
II. Calculation of the percentage composition of hydrolyzed Aroclor 1262 from the equivalent weight 221 (analytical value);
kUoH
Y A XL
f\ /CCK'f 1 . c
n/1 p 7 r / il'vi y a'
Iy
Assuming that only the species (A) and (B) are present.
Let x = % A in the mixture
y % B In the mixture
175 (.Olx) Contribution of (A) to the equivalent weight.
368 (.Cly) - Contribution of (b) to the equivalent weight.
Thnn
x + y 100 1.75* - 3.68y
221
And x - 76.2 y - 23.8
If It is assumed that only 4 components can be present in the
reaction mixture resulting from HY 1262 and epichlorohydrin,
f C. W, c U - Q
- I-/
7 c m.i n ~c\.
CK <, <! < H j
f-h eg
u")
&
/o t-0- (..Q 2 a' 'Ji.vT
O'
h Uj-H2 *4 -Zt'f O -3.-71
yi.rv
yH Cs ire**,
3/v?
'"/v : i \
then the % aromatic chlorine, % E.O., and % aliphatic chlorine is found by adding the contributions of each component to that per cent. The contributions are in turn found by multiplying the theoretical constants listed under each component by the percent of that com ponent present in the mixture, calculated in the equations (2).
For GMH: Aromatic Cl - 31.47 (.762) + 44.27 (^238) - 34.51
Aliphatio Cl - 12.88 (.762) + 7.70 (.238) - 11.64
# For OE: %.. Aromatic Cl - 3---6--.-4--5- (,.-7--6---2- -) +. 4--8--.-0--8-- (.2389 - 39 = 21
*" E" -~- -
6.9"2 (.776'-2-) + 3' .77 (.238) - 6.06
? 1t* STLCOPCB4095128
-55-
Ufllng the same argument discussed previously, for any mixture containing QMH and QE,
* Aromatic Cl ' (r*--AllipThT^Crl--P-o-u-n-dj) ih Ci +* r(E".6O^.55F--ound)) 70 01
ResultB
- * Aliph Cl (2.96) + * ]E.O. (6.47)
Sample
EP 1262 (FD-3) EP 1262 (PD-3A) EP 1262 (fd-4) EP 1262 (FD-6B) EP 1262 (FD-7A) EP 1262 (FD-8)
* E.O.
3.38 5.38 3.52 5.37 5.46 1.14
* Aliph Cl
UJ
4.98 0.55 4.53 0.53 o.4q 9.08
* Aromatic Cl Calcd. Pound*
36.65 36.40 36.18
36.21
36.91 34.26
37.18 39.00 36.38
39.09 39.10
35.49
After subtracting * Aliphatic Chlorine found.
+0.53 +2.6C
+0 .PC +2 .t+2.:.--
+1.23
Although the spread in calculated and found values for aromatic chlorine is much greater than in the preceeding case, the data
nevertheless indicates that hydrolyzed Aroelor 1262 contains a substantial percent of the monohydroxy derivative.
Calculation of theoretical chlorine for hydrolyzed Aroelor 1262 baa-, cn the percentage composition found from the analytical equivalent weight 221:
48.1 (.762) + 55.3 (.238) - 49.81*
This is O.98* off from the found value of 48.83*.
This same method was used to calculate the percentage composition of hydrolyzed Aroolor 1262 Lot No. Z-2201 for which the analyses were 50.0* Cl and E.W. - 219.
Based on the E. W. 219, the percentage composition was calculated to be:
* A 77.2 (di-hydroxy) * B m 22.8 (mono-hydroxy)
' ' !*
**
-* i *
STLCOPCB4095129
-56-
III. Calculation of percentage composition of nydrolyzed.
Aroolor 1262 using the chlorine analysis 48,8jt which was obtained on a sample with an analytical E.W. of 221.
The same roecles used under II are considered.
Let x - f A; 48.1x Contribution of (A) c. Cl anal.
y - f B; 55,3y - Contribution of (B) to Cl anal.
Then x + y - 1
48.1 x + 55.3 y - 48.8
(3)
'nd x - 0.903
y - 0.097
By reference to tne components listed on page (5)
For OMh, f Aromatic Cl - 31.4? (.903) 4- 44.2' (.037) - 32.72
f Aliphatic cl - 12.88 (.903) + 7.70 (.097) - 12.38
Por 0E, f Aromatic Cl - 36.45 (.903) + 48.08 (.097) - 37.57
f E.O. -
6.92 (.903) + 3.77 (097) - 6.60
Using the argument previously discussed, for any mixture oontainir;.
(* tic Cl - (
i Cl Found L op 7p . (?
15H38
r 32,72
0, Found) .60 )
J1*7( cJ;t1
- % Aliph Cl (2.64) + f E.O. (5.69)
Results:
Sample
% E.O.
% Aliph Cl.
f Aromatic Cl Calcd. Found*
EP 1262 EP 1262 EP 1262 EP 1262 EP 1262 EP 1262
(FD-3) ,FD-3A) FD-4)
PD-6B) TO-7A) [PD-o)
3.38 5.38
3.52 5-h 5.48 1.14
4.98
0.55 4.53 0.53 0.49 9.08
After subtracting f> Aliph Cl found.
32.38
32.05
31.99 31.96
32.47 30.46
37.18 39.00 36.38
39.09 39.10
35.49
+4.80
+6.95 +4.39 +7.13 +6.63 +5.03
DSW 621101
< * ' * ? !l i
STLCOPCB4095130
The wide spread In Che calculated and found values for aromatic chlorine indicated that the percentage composition calculated from % Cl, found for hydrolyzed Aroclor 1262, is not a suitable criter ion for calculating theoretical aromatic Cl for QMH and GE. It should be noted here, however, that a difference of only about
In the chlorine analysis of hydrolyzed Aroclor 1262 reflects a large difference in toe percentage composition calculations. Thus, if it is assumed that the theoretical % Cl for nydrolyzed Aroclor 1262, as calculated from the E. W. 221 (pg.55), is correct, then
x+y-1
48.1 x + 55.3g - 49.81 x - 76.4 (% A) y - 23.6 {% B)
A difference of 0.9836 Cl haa reflected a difference of 90.3 - 70.4 13.9 in percentage (A) in the mixture.
Similarly fo'- Lot No. Z-22C1, a difference of O.2656 Cl was found
tc reflect
Terence of 4.6j6 in the percentage (A) in the mixt
IV. Calcula
3 of the equivalent weight of QE using the percent.^
composite _>n determined by (a) E.W. - 221 and (b) % Cl - 48.8:
(cf components listed on page 54)
(a) 231 (.762) + 424 (.238) - 277
(b) 231 (.903) + 424 (.097) - 250
-'he experimentally determined equivalent weight of OE was 28l.
Therefore, the reaction (1) and the percentage composition deter
mined from the E.W. 221 equations (2) gave values for the equivalent weight of OE which were in close agreament with the f our c value, while the percentage composition determined by % Cl - 48.8
equations (3) gave a value for the equivalent weight of OE which differed widely from the found value.
Appendix D: Infra red Spectra
The infra red spectra were obtained on the solid phases of the compounds uBlng a NaCl resin and a Perkin Elmer Model 21 spectro meter .
A. Tetraohlorobisphenol-A B. Tetraohlorobiaphenol-A diglycldyl ether.
The band at about lluw was taken to be the oxirane band. The spectrum shows only a negligible amount of hydroxyl ab sorption.
C. Tetrachlorobisphenol-A di- K-glycerolmonochlorohydrin. In this spectrum the oxirane band is absent and the OH band appeared as expected.
The spectra of the epoxides of bisphenol and glycerol have been pub lished previously. In these spectra the band at 10.95 m. was assigned to the oxirane group (Ref 31).
DSW 621102
STLCOPCB4095131
STLCOPCB4095132
STLCOPCB4095133
- i4.r-. iw ft-'
STLCOPCB4095134
STLCOPCB4095135
STLCOPCB4095136
STLCOPCB4095137
-24drolyzed Aroclor 1262. This phase of the epoxy program was carried out cooperatively with Dr. J. Dazzi and Mr. J. Herbig at Dayton. Because the composition of hydrolyzed Aroclor 12o2 was a mixture whose composition varied, it was desirable to track the course of its addition reaction with ECH by considering the equivalent, weight of the mixture only. (Aromatic chlorine analysis was also considered but was rejected because the oxygen analysis cf the initial mixtures received for eooxidation were Inconsistent with a dihydroxy product). The nature of the products was reasoned from the ECH stoichiometry of the reaction, epoxy oxygen analysis, hydrolyzable chloride amlysis and total chlorine analysis. Prom these data it was possible to obtain some approximate calculations from which it could be shown that hydrolyzed Aroclor 1262 was a mixture of hydroxy materials which contained as much as 24# of monohydroxy derivatives. These calcu lations and their results are shown in Appendix C. (C) Reaction of Blsphenol-A with Excess ECH When a limited amount of aqueous NaOH is addad to a solution of BPA in excess ECH above 45, the predominant exothermic reaction
STLCOPCB4095138