Document k681arpObvpVgo2Y2YmRyQGbE

FILE NAME: Welding (WELD) DATE: 1995 DOC#: WELD022 DOCUMENT DESCRIPTION: Unpublished Internal Report of John Dement - Evaluation of Asbestos-Containing Welding Rods for Asbestos Release ROBERT JACOBS * THOMAS C. CRUMPLAR + MARLA ROSOFF ESKIN 0 ELIZABETH BARNES LEWIS +0 VINCENT J.X. HEDRICK, II * ALSO A D M ITTE D U. S. PA TEN T O F F IC E DISTR IC T O F CO LU M B IA BAR + ALSO A D M ITTE D NEW JE R S E Y 0 ALSO A D M ITTED PEN N SYLVA N IA BAR J acobs & C rumplar, R A ATTORNEYS AT LAW a EAST 7 T H STREET P. O. BOX 1271 WILMINGTON, DELAWARE 1 98 99 April 7, 1997 F,AX ( 3 0 2 ) 6 5 6 - 5 8 7 5 Barry Castleman, Sc.D. 2412 Pickwick Road Baltimore, MD 21207-6631 Re: Welding Rod Defendants Dear Dr. Castleman: Pursuant to our telephone conversation of this morning, I am enclosing copies of Dr. Nicholson's and Dr. Dement's affidavits and deposition testimony regarding welding rod exposure, as well as Dr. Dement's study dated March 14, 1995 regarding welding rods If you have any questions please feel free to contact me VJH\pra Enclosure Vincent J. X. Hedrick, II c EVALUATION OF ASBESTOS-CONTAINING WELDING RODS FOR ASBESTOS FIBER RELEASE John M. Dement, Ph.D., CIH Lori Todd, Ph.D., CIH Courtney Smith March 14, 1995 Duke University Medical Center Department of Community & Family Medicine Division of Occupational & Environmental Medicine 2200 W. Main Street, Suite 700, Box 2914 Durham, North Carolina 27710 WELDING ROD ABRASION TEST Background A test o f asbestos-containing welding rods was performed under controlled conditions to determine if asbestos fibers are released into the air from handling and abrasion. Welding rod samples were First tested for asbestos and non-asbestos fiber content by having a bulk sample o f the rod coating analyzed by Transmission Electron Microscopy (TEM) and Polarized Light Microscopy (PLM). Welding rods found to be positive for asbestos content were selected and subjected to the abrasion test. In addition, one set of welding rods found not to contain asbestos was tested as a negative control o f the experimental procedure. Testing involved bumping and rubbing two identical welding rods together in a small chamber for approximately 15 minutes while air samples were collected inside the chamber. Background air samples were obtained between each test. Abrasion Test Design Asbestos fiber release was tested using a customized Plexiglas glove box fitted with high efficiency particulate air (HEPA) filters. (See Appendix C, Figure 1.) The glove box is air tight except for access ports and filtered air intake and exhaust ports. Prior to each simulation, the glove box was thoroughly washed, and the air inside the glove box purged for 25 minutes using a high volume exhaust system. All air entering and leaving the glove box was HEPA filtered. Purging of the glove box was performed to reduce ambient particulate levels. For each set of experiments, all necessary materials were placed inside the glove box in sealed plastic bags. This included two sets o f air filters (one for the background air sample and one for the test sample), the welding rods to be tested, and clean-up materials. The air sampling pump was calibrated with a "Gilibrator" air flow calibrating device before and after all sampling using an identical calibration filter (marked for calibration only) so as not to contaminate the sampling filter with ambient air. Flow rates of approximately 12 liters per minute were used for all samples. To confirm that the air inside the glove box was free of asbestos fibers, a background air sample was collected for 20 minutes before testing each set of welding rods. Just prior to the initiation of the welding rod experiment, the air sampling pump was turned on. The two identical welding rods to be tested were then removed from the plastic bag and were bumped and rubbed against each other for approximately 15 minutes. After the rods had been bumped together for 15 minutes a small mixing fan was turned on for 5 minutes and then turned off. The mixing fan was used in order to enhance air mixing within the glove box. Air sampling was performed for a total o f 30 minutes. The glove box was cleaned, purged with HEPA filtered air, and re cleaned before being used for testing the next set of rods. All air samples were obtained using 25 mm diameter sampling cassettes fitted with mixed cellulose ester filters. Samples were analyzed for asbestos using Transmission Electron Microscopy (TEM), 40 CFR 753 Subpart E, Appendix A, and Phase Contrast Microscopy (PCM), NIOSH 7400. Welding Rods Tested The welding rods subjected to the abrasion experiment were two Hobart 6010 (batch 109), two Westinghouse 6011 (batch 107), and two partially burned asbestos containing received from Dr. James Millette of MV A. Analytical data for the rods tested arc given in Appendix A. The Westinghouse 6011 (batch 107) rods were found not to contain asbestos and were tested between the tests o f rods containing asbestos. This was done as an overall control of the testing, chamber clean-up and analytical procedures. Sample Preparation and Analysis Samples were prepared using the above protocol for the abrasion test. The flow rates and total sampling time for each filter cassette are outlined below in Tabic 1. (Cassettes 1 and 2 were used only for calibration and were not analyzed.) Table 1: Sample Preparation Data ID Description tt 3 Background 4 Hobart 6010 (batch 109) 5 Background 6 Westinghouse 6011 (batch 107, non-asbestos) 7 Background 8 Used for calibration only 9 Partially burned rods (received from D r. M illette) 10 Field blank - ambient air Start Flow, Lpm End Flow, Lpm 12.29 11.29 12.05 12.63 11.29 10.39 12.51 12.49 Average Flow, Lpm 11.79 10.84 12.28 12.56 Samplin g time, min 2 0 .0 3 0 .0 2 0 .0 3 0 .0 Totals air volume, Liters 235.8 325.2 245.6 376.8 12.44 12.27 12.36 2 0 .0 247.1 12.27 12.84 12.56 3 0 .0 376.7 | The used filter cassettes were covered with duct tape (to prevent their coming apart), numbered, and placed in individual sample bags. They were sent via Federal Express to Materials Analytical Services in Atlanta and were analyzed there by the methods mentioned, under "Abrasion Test Design." Results Specifics of the laboratory analyses and results are included in Appendix B. For each set of asbestos containing rods tested, the phase contrast data for the test detected Fiber concentrations in excess of background. The abrasion test using the non-asbestos rod found no asbestos fibers or structures by TEM thus confirming that the chamber was free of contamination. Highest TEM concentrations were observed for the partially used rods with a concentration o f asbestos structures by TEM o f 1.231 structures/cc. The partially used welding rods were much more friable than the unused rods and generated significantly more airborne asbestos fibers. Fiber identification by TEM demonstrated that the fibers generated by the abrasion tests were chrysotile. Filter blanks and chamber background samples collected prior to each experiment did not detect the presence of chrysotile nor did the test conducted with non-asbestos containing welding rods. Therefore, the fiber concentrations measured arc the result of fibers released from the welding rods. Electron micrographs of typical asbestos structures observed in this sample are shown in Appendix B. APPENDIX A WELDING ROD COATING ASBESTOS ANALYSIS RESULTS MATERIALS ANALYTICAL SERVICES INC. PRESENCE OR ABSENCE ANALYSIS CUENT: flA fC ' DATE: MAS JOB #: SAMPLE ID: M f } <P/ l _ ___* 3 0 > \O c{ G e lo VERIFICATION OF ASBESTOS IDENTIFICATION TYp E o F SBESTOS mOr pHoLQg y SELECTED AREA ELECTRON DIFFRACTION CHRYSOT1LE AMOSITE THEM OLITE ACTINO LITE NTHPHYLUTE CROCIDOUTE SAMPLE ANALYSIS G R ID # ESTIMATED NUMBER SQ U A R E # OF STRUCTURES 1-1 /o 2- 7- 3 _ 4 S _ .C f- 2-1 . 3 .................- 2 __ / ? 3 y/ _ 4 /o 5 NO ASBESTOS DETECTED: COMMENTS: Ed s p r in t o u T " - MATERIALS ANALYTICAL SERVICES, INC. BULK ASBESTOS ANALYStS Project # - S p l f t M12974-03 ___________________ . Project Name: welding Ron coatinp; sampi f s ------ Sample Identification:! INn n Ppf ERF Sample Tr>dd-0I Q7_ Gross Visual Description: rray cream fihmtw moderately bormd date: .1/31/95 A n alyst EauLUess. l t ^ (qQ i f . Morphology Pleocftroism Refractive Index UH. Sign of Elongation Extinction Birefringence Melt Fiber Name OPTICAL DATA FOR ASBESTOS IDENTIFICATION ASBESTOS MINERALS: E s t VoL % C h ry so tae------------------------------------------------------------------- NAO A m o stto _________________________________ __________________ Croddofito .......................................... ...... .......................... Trcmofita/AciinoGte _______________________ . ____________ AntbophyJRte ______ !______________________ _____________ OTHER FIBROUS COMPONENTS: Mtneral/Rockwool Fibrous glass Cellulose Synthetic Talc NON FIBROUS COMPONENTS: ____________ ____________ ________ 35 ___________ ------------ 01-- Vermicufite Wollastonite Mineral Grains _______ X_ X- BINDERS: X Hne.grain.ed.a8oreoatfi observed_________;__________ EFFERVESCENCE: weak tn moderate COMMENTS: NAQ No Ashesfns Qhserved X = Matorink detected Sample ashed MVA, Inc. -- Excellence in Microanalysis 06 December 1994 John Dement, Ph.D. Duke University Medical Center PO Box 2914 2206 W . Main Suite 700 Durham, NC 27710 . Re: Welding Rod MVA Project No. 1094 Dear John: Enclosed please find three welding rods which were partially burned in our controlled experiment They contain approximately two percent of chrysotile asbestos by weight Please call if you have any questions. Sincerely, JRM/aw Enclosure DjPROJECTSn094;DEMENTl 5500 OakJbrook Parkw ay 200 Norcross, Georgia 30093 'telephone 404-062-8509 Facsimile 404-662-8532 UJ/U7/5 14: JJ tei ^ ^ MVA, Inc. 5500 Oakbrook Parkway, Suite 200 Norcross, Georgia 30093 (404) 662-8509 PLM ASBESTOS ANALYSIS MVA#: 0685 Client: Ness, Motley, Loadholt, Richardson & Poole Samplet ID # : D2917 Client Sample ID #: 129 Macroscopic Description: White welding rod Asbestos Minerals: Chrysotile Amosite Crocidolite Anthophyllite Asbestos Tremolite/Actinolite Asbestos Total Asbestos Rllers/Binders/Pigment % Rllers/Binders/Pigm ent Identified: Mica/Vermiculrte Synthetic Foam Gypsum Other - 2% ------ Other Rbers: Glass Fibers Cellulose Synthetic Fibers Other -2% 78% ----- Perlite/Pumico ----- Carbonate ----- Pigment Comments: -----2 0 % ----- Analyst: Bill Turner Date: 12/27/93 thPROJECTS:1094:DEMENn APPENDIX B LABORATORY DATA FOR WELDING ROD ABRASION TESTS March 9, 1995 MATERIALS ** AAMNAAILYYTTiIrCAA L SERVICES ** Ms. Courtney Smith Duke University Medical Center Division of Occupational & Environmental Medicine Box 2 9 1 4 Durham, NC 2 7 7 1 0 Dear Ms. Smith: We have completed our analysis for the eight air samples that we received on March 4, 1995. Our results for the analysis are enclosed. Please do not hesistate to give me a call after you have had a chance to review the data. Sincerely, ' Longo, Ph.D. WEL/mac Raleigh Office: 6I6 H utton Strtct Suite 101 Raleigh, N orth Carolina 27606 (919) 829-7041 FAX (919) 829-5518 Atlanta Office; 3597 Parkway la n e Suite 250 N o rm r^ . Georgia 30092 (404) 448-3200 FAX (404) 368-8: MATERIALS ANALYTICAL SERVICES Project: MAS No: Date: Duke University Medical Center M -12592 March 9, 1995 Phase Contrast Microscopy Client # Structures/cc 3 0.003 4 0.252 5 < 0.014 6 0.075 7 < 0.014 8 N/A (Blank) 9 0.032 10 N/A (Field Blank) Transmission Electron Microscopy Client Structures/cc 3 < 0.013 4 0.010 5 < 0.013 6 < 0.008 7 < 0.013 8 N/A (Blank) 9 1.231 10 N/A (Field Blank) MATERIALS ANALYTICAL SERVICES AIR SAMPLE AN ALYSIS ANALYST: ANALYTICAL PROTOCOL: L evel II REVIEWER : SAMPLE DATA ANALYSIS PARAMETERS diem : (WfegiL MAS Sample Number: M \ S 1 1 - / Sample ID :_____________________________________ Date Analyzed: SampleVolume,cc: ^ 3 0 ___ Microscope N um ber: r~ Filter Type : W C ' ,-P 3*rs Accelerating Voltage: \ r> O K? Filter Pore Size,urn : _______ A I (>_________ Indicated M ag: K Effective Filter Area, mm1: ______3 % 5T _______ Screen Mag: YD ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low M ag: -- Percent Loading: Number of Openings / Grids Counted : Grid Opening Size (urn) : 1) ///? Average Grid Opening Area, mm1: 2) / f Area of Filter Analyzed, mm1: IO / x //^ * J IL ASBESTOS STRUCTURE DATA < 5.0 urn Number of Chrysote Asbestos Structures Counted : j2 Number of Amphibole Asbestos Structures Counted : j L Number of Asbestos Structures Counted : 0 ASBESTOS CONCENTRATION DATA > 5.0 um CP (7 O Total tP 0 Asbestos Concentration Str/cc > 5.0um: % Asbestos Concentration Str/cc < 5.0um: fifa Chrysotile Asbestos Concentration Str/cc: Amphibole Asbestos Concentration Str/cc: a is fe Analytical Sensitivity Str/mm1 : Total Asbestos Concentration Str/mm1 : I 7n O iO iZ h t BAS = Below Analytical Sensitivity Included form provides formulae fo0r ,cal/culUating results. Analytical Sensitivity Str/cc: Total Asbestos Concentration Str/cc: O sO ]3 > 7 7 E fe . - MAS JO B NUMBER: M \ ^ 5 \- -- f PAGE # 1/ 1 ______________ 6 eiS } > ~ _____________________ _______________________ s ra G R ID # TYPE STRUCTURE LENGTH- W id t h C O N FIR M A T lO fA # SQUARE# M IC R O N S MICRONS MORPH. I SAED EDS l f/ 'D V s < ?r e r? - c .g ' r 3 a s; o /i u / ( ,p /S iP - * KEYS T O ABBREVIATIONS USED ABOVE: TYPE : C = CHRYSOHLE AM A M o sr r e CH = CROC1DOUTE AC = ACTINOLITE TR = TREMOLITE AN = ANTHOFIYLLITE N = N O N ASBESTOS STRUCTURE : F FIBER B - BUNDLE C * CLUSTER M = MATRIX OTHERS: NSD = NO STRUCTURES DETECTED MORPH MORPHOLOGY SAED SELECTED AREA ELECTRON DIFFRACTION EDS = ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR = INTERROW SPACING NP = NO PATTERN MATERIALS ANALYTICAL SERVICES AIR SAM PLE AN ALYSIS ANALYST : ANALYTICAL PROTOCOL: Level II REVIEWER : SAMPLE DATA Client: ^ u J r 0- U n i A V W ^ Q a jc Sample ID :___________________ j/_ _______________ ANALYSIS PARAMETERS MAS Sample Number: M V 3 - V U - T - Date Analyzed: <r Sample Volume,cc : ^2..5~<Q Microscope Number: *2. Filter Type : AJ C p f O&nwi Accelerating Voltage: (0<o K} Filter Pore Size,urn : _______ A J ________ Indicated M ag: K Effective Filter Area, mm2: ________1 P S _______ Screen Mag: K ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low Mag : -V ^ y - Percent Loading : - a7./ Average Grid Opening Area, mm1: () *-0 1 1 1 2 3 - Number of Openings / Grids Counted : Grid Opening Size (urn): 1) 1 | O 2) i o n Area of Filter Analyzed, mm2: ( ) >! ' | o t- jin. ASBESTOS STRUCTURE DATA <5.0 urn Number of Chrysotile Asbestos Structures Counted : __________ Number of Amphibole Asbestos Structures Counted : __________ Number of Asbestos Structures Counted : >5.0um __________ __________ Total _______ _______ _____ ASBESTOS CONCENTRATION DATA Asbestos Concentration Str/cc > 5.0um: * Asbestos Concentration Str/cc < 5.0um: 0,0X0 o ,o o Chrysotile Asbestos Concentration Str/cc: O i 0 \ O Amphibole Asbestos Concentration Str/cc: 'A ' S Analytical Sensitivity Str/mm2 : Total Asbestos Concentration Str/mm2: X '.V i'v '/s .7 .. Analytical Sensitivity Str/cc: Total Asbestos Concentration Str/cc : 0 W & b W :^ U . BAS --Below Analytical Sensitivity Included form provides formulae for calculating results. MAS JOB NUMBER: STR # G R ID # SQUARE# l 4 ~ /= 7 X n j> iT T M 1X TYPE c C- STRUCTURE F F A* - / ^ LENGTH MICRONS 0\ ^ G V % W IDTH MICRONS 0 -.0 5 " c o ^ ~ O (a 0 | PAGE # \ C O N F IR M A T IO N MORPH. SAED -------- -- J Zoo -- / V EDS --" 6 V /S J O . 3 H r> i T 1Y O, -- -- --- o M Oto \ -- ------ S' ^ , Lc C * O Vi ^ -- -- (o / y l " F 2 -- - O Co H -i F S ~ i? 7 e -i c. pv? - Q > 1 o lU -- -- ? V (o <_ \ ' H o I -- C- A? ' F O * L jO o *o j -- y jd t* KEYS TO ABBREVIATIONS USED ABOVE: TYPE: C = CHRYSOTILE AM AMOSITE CR CROCtDOLTTE AC = ACTINOLITE TR = TREMOUTE a n = A N T O orim irrE N = NON ASBESTOS STRUCTURE : F FIBER B BUNDLE C CLUSTER M MATRIX OTHERS: NSD => NO STRUCTURES DETECTED MORPH - MORPHOLOGY SAED = SELECTED AREA ELECTRON DIFFRACTION EDS = ENERGY DISPERSIVE X -R A Y SPECTROSCOPY IR = INTERROW SPACING H r = NO PATTERN MATERIRLS ANALYTICAL SERVICES MON 06-MAR-95 10:31 CuhsoM 1.290keV = 8 ROI (SIKoO 1.660: 1.810=112 0.000 42 Ml2592-2 , CHRYSOTILE VFS = 32 10.240 MATERIALS ANALYTICAL SERVICES AIR SAM PLE AN ALYSIS ANALYTICAL PROTOCOL: L ev el 11 ANALYST: REVIEWER : SAMPLE DATA Client: > (VXecii Sample ID :_________________5 _______________ Sample Volume,cc: c 2 V ' (p O 0 0 Filter Type: M C~ F3ter Pore SLze,um: _______ a J G>_________ Effective Filter Area, mm1: _____ 3 P 's ________ ANALYSIS PARAMETERS MAS Sample Number M \ X S H 2. -- 3 Date Analyzed : Microscope Number : U -A < T . Accelerating Voltage : Indicated Mag : Screen Mag : \ n O ______ _______ fr (? /f'? ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low Mag: Number of Openings / Grids Counted : Percent Loading: Grid Opening Size (um) : 1) / / / Average Grid Opening Area, mm1: 0 iQ 1% 3 < ^ 2) // Area o t Filter Analyzed, mm1: 0 ' /7 > i O / x tO l x I/2-* ASBESTOS STRUCTURE DATA < 5.0 um Number of Qirysote Asbestos Structures Counted : Number of Amphibole Asbestos Structures Counted : Number of Asbestos Structures Counted : SL 0_ CL ASBESTOS CONCENTRATION DATA > 5.0 um o_ o_ CL Total _0__ 0 0 Asbestos Concentration Str/cc > 5.0um: Asbestos Concentration Str/cc < 5Dum : Chrysote Asbestos Concentration Str/cc : Amphibole Asbestos Concentration Str/cc : '/l DG ip.lII Analytical Sensitivity Str/mm* : Total Asbestos Concentration Str/mm1 : Analytical Sensitivity Str/cc : Total Asbestos Concentration Str/cc : s n BAS = Below Analytical Sensitivity Included form provides formulae for calculating results. MAS JOB NUMBER: M \ , ^ 5 C\ ^ T ____________ a v i ? ? n ----------------------------^ STFL G R ID # TYPE STRUCTURE # SQUARE# r- Y 3 A/<? # S'?? _ f r < "> P LENGTH MICRONS WIDTH MICRONS CONFIRMATION M O RPH. SAED /tl* 7 DS 'S D . c -H H i 'S P ^S P A /IP * Cl a/ A/<?P M v9 ' * * KEYS TO ABBREVIATIONS USED ABOVE: TYPE: C C H R Y S O T IL E A M = A M O S IT E CR C R O O D O UTB A C - A C E L N O L IT E TR TO EM O U TE A N = A N T H O P H Y L U T E N = NON ASBESTOS STRUCTURE F F IB E R B BUNDLE G CLUSTER M = M A T R IX . OTHERS: NSD = NO STRUCTURES DETECTED MORPH MORPHOLOGY SAED - SELECTED AREA ELECT RON DIFFRACTION E D S - ENERGY DISPERSIVE X-RAY SPECTROSCOPY 1R =* INTERROW SPACING NP = NO PATTERN MAI ER1ALS ANALYTICAL SERVICES A IR SAMPLE AN ALYSIS ANALYTICAL PROTOCOL: L ev el II ANALYST: REVIEW ER: _____ _______________ SAMPLE DATA Client : Sample ID :____________ Sample Volume,cc : LtCV , lY\e-c> (~Qv\h-r.v' ______________ 37looo ANALYSIS PARAMETERS MAS Sample Number: M\a5*i z - y Date Analyzed: Microscope Number: s-(.-ir 5~ Filter Type : P'l CT ,-Pa M /s Accelerating Voltage: \n O I Filter Pore Size,urn : Effective Filter Area, mm1 : aJG 3 <r~ Indicated Mag: Screen Mag: I //> I ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low M ag: Percent Loading: Average Grid Opening Area, mm1: 0 \Q / I Number of Opening? / Grids Counted : Grid Opening Size (um) : 1) J i l l 2) !tv Area of Filter Analyzed, mm1: 0 ^ 1 ot ^ ______ \0 / X X //tP ASBESTOS STRUCTURE DATA < 5.0 um Number of Chrysotile Asbestos Structures Counted : Number of Amphibole Asbestos Structures Counted : Number of Asbestos Structures Counted : L 0 > 5.0 um o _ j2 _ Total V D__ tz _ ASBESTOS CONCENTRATION DATA Asbestos Concentration Str/cc > 5.0um: Asbestos Concentration Str/cc <. 5.0um : <Lft5 iK Chrysotile Asbestos Concentration Str/cc : Amphibole Asbestos Concentration Str/cc : JL S L iL . Analytical Sensitivity Str/mm1 : Total Asbestos Concentration Str/mm1 : s s t. ajsjtj. -U au'iL^ssssaaBg-- a n a s iiifc . j n m a a a s s x s s s s BAS = Below Analytical Sensitivity Included form provides formulae for calculating results. Analytical Sensitivity Str/cc : Total Asbestos Concentration Str/cc : MAS JOB NMBER: _ ______________ ,- ^ W n S * STR GRID# # SQUARE# M \ < ^ 5 Ct<^ -- V page# | / "~ _______________________ __________________ - TYPE STRUCTURE LENGTH WIDTH CONFIRMATION M ICRONS MICRONS MORPH. SAED ED; o r - (if ( If 1? "1 r E8 A /U > /S<7 . pj 'f Ctf o f (, 4 /$ fS - s C /O ......... ... t/k. ^>D - ** * KEYS T O ABBREVIATIONS USED ABOVE: TYPE: C = CHKYSOHLE AM AMOSTTE CR CRQC1DOUTE AC A CnH O U TE TR " TREMOUTE AN ANTHOPHYLLITE N = NON ASBESTOS STRUCTURE: F *=*FIBER B *=BUNDLE C = CLUSTER M MATRIX . OTHERS: NSD = NO STRUCTURES DETECTED MORPH ~ MORPHOLOGY SAED SELECTED AREA ELECTRON DIFFRACTION EDS => ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR INTERROW SPACING NP = NO PATTERN MATERIALS ANALYTICAL SERVICES AIR SAM PLE ANALYSIS A N A L Y S T : 1 ANALYTICAL PROTOCOL: Level II REVIEW ER: SAMPLE DATA Client: \ > uc*-> USV> IY \edy Qxhxt-e.r- Sample ID :_________________ 2 __________________ Sample Volume,cc : _ Filter Type: M C /T Filter Pore SLzc,um : _______ a J G>_________ Effective Filter Area, mm1: ______ 3 P \ _______ ANALYSIS PARAMETERS MAS Sample Number : M jP Date Analyzed : -h - c* - r ~ Microscope Number : J2_ Accelerating Voltage : 1q Q Indicated Mag : Screen M ag: _________ 3 ^ / S i} ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low Mag : Number of Openings / Grids Counted: Percent Loading : Grid Opening Size (um ): 1) / / / Average Grid Opening Area, mm* : 0 * 0 I ~^ ^ 7 2) HO Area of Filter Analyzed, mm* : 0 ^ ______ )Q / X /P ASBESTOS STRUCTURE DATA < S.Oum Number of Chiysotfle Asbestos Structures Counted : Q Number of Amphibole Asbestos Structures Counted : 0 Number of Asbestos Structures Counted : 0 ASBESTOS CONCENTRATION DATA > 5.0 um o 0 l? Total o L? o Asbestos Concentration Silice > 5.0um : Asbestos ConcentrationStr/cc < 5.0um: Ml Chrysote Asbestos Concentration Str/cc : Amphibole Asbestos Concentration Str/cc : ah Analytical Sensitivity Str/mra* : Total Asbestos Concentration Str/mm* sT 1 Analytical Sensitivity Str/cc : M S I Total Asbestos Concentra tion Str/cc : m m m iM m BAS = Below Analytical Sensitivity Included form provides formulae for calculating results. MAS JOB snra # GRID# SQUARE# PAGE # L TYPE STRUCTURE LENGTH WIDTH CXONFll IMATION MICRONS MICRONS MORPH. SAED EDS Mf l f i 1 a/$ D tn - 3 EH- //J a/<?D 4/ * sr : a .< r fij} Di. * *- * KEYS TO ABBREVIATIONS USED ABOVE: TYPE: C = CHRYSOTTLE AM *=*AMOStTE CR CRO Cm oUTE AC = ACTIN OLITE TR TREMOUTE AN ANTHOPHYLLITE N NON ASBESTOS STRUCTURE: F *=FIBER B BUNDLE C*=* CLUSTER M = MATRIX . OTHERS: NSD *= NO STRUCTURES DETECTED M ORPH =MORPHOLOGY SAED =* SELECTED AREA ELECTRON DIFFRACTION EDS - ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR *=>INTERROW SPACING HP = NO PATTERN MATERIALS ANALYTICAL SERVICES AIR SAMPLE AN ALYSIS ANALYST: ANALYTICAL PROTOCOL: Level II REV IEW E R SAMPLE DATA ANALYSIS PARAME1RRS dient: p O l ( 6 r ( J / S f l/ 1 M / P / (Z & A MAS Sample Number : __ M_ Sample ID :__________________ % ~ \ 3 l Dat e Analyzed : ____ fi 7 -fC Sample Volume,cc : Filter Type : o M C Er 2- Microscope Number: Accelerating Voltage: PC? Filter Pore Size,urn : Effective Filter Area, mm1 : A S (> 3S*r Indicated M ag: Screen Mag: /i'j K ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low M ag: _ Number of Openings / Grids Counted: Percent Loading: _ & Grid Opening Size (um) : 1) I P (f Average Grid Opening Area, mm1: 0 <Ql 7 ^0 V 5~~ 2) I I P Area of Filter Analyzed, mm1: @I I 'M ) _____ ASBESTOS STRUCTURE DATA < 5.0 um Number of Chrysotile Asbestos Structures Counted : _____Q Number of Amphibole Asbestos Structures Counted : _ 0 Number of Asbestos Structures Counted : 0 ASBESTOS CONCENTRATION DATA > 5.0 um 0 0 0 /P! P-' Xue X /V Total O JL 0 Asbestos ConcentrationStr/cc > 5L um: Asbestos Concentration Str/cc < 5.0um : M it Chrysotile Asbestos Concentration Str/cc : Amphibole Asbestos Concentration Str/cc : Analytical Sensitivity Str/mm1 : 0 3 'T ..;r..' Total Asbestos Concentration Str/mm1 : f i t t i t i Analytical Sensitivity Str/cc : Total Asbestos Concentration Str/cc : S& M i mm BAS --Below Analytical Sensitivity Included form provides formulae for calculating results. MAS JOB NUMBER: ____________ K a j y 7s$ STR G R ID # # SQUARE# M/ ^ ------ page# // / --............................ ............................................................ .... ...... TYPE STRUCTURE LENGTH WIDTH CO N -IRMATION MICRONS MICRONS MORPH. SAED EDS aS D C- 3 s i/ { V fi a/ P tit / / ip ?? 4/ Ox - a c VS (p-<^ P A / iP /^ $ P tif- a / '.P * KEYS TO ABBREVIATIONS USED ABOVE: TYPE : C = CHRYSOTELE AM = AMOSTTE CR = CROdDOLTTE AC = ACTINOLITE TR - TREMOLITE AN = ANTHOPHYLLITE N = NON ASBESTOS STRUCTURE : F FIBER B BUNDLE C = CLUSTER M = MATRIX OTHERS: NSD = NO STRUCTURES D E T E C T E D MORPH MORPHOLOGY SAED SELECTED AREA ELECTRON DIFFRACTION EDS = ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR = INTERROW SPACING NP = NO PATTERN MATERIALS ANALYTICAL SERVICES AIR SAM PLE ANALYSIS ANALYST: ANALYTICAL PROTOCOL: L evel II REVIEWER : SAMPLE DATA Client: 7 s) lA/K-g- i/h .v . lHcj > ANALYSIS PARAMETERS MAS Sample Number : M /S S V - 7 Sample ID :______________ ^ ___________________ Date Analyzed : Sample Volume,oc : Filter Type : 3 7 7 qqo Microscope Number : Accelerating Voltage : iO k: Filter Pore Size.um : Effective Filter Area, mm2: A/& 2S /L Indicated Mag : Screen Mag : O L k: k: ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low Mag: Number of Openings / Grids Counted : Percent Loading: / <Q_______ Grid Owning Size (um) : 1) % Average Grid Opening Area, mm2: 0< & / <AA)-C> & 2) 1\ O Area of Filter Analyzed, mm2: kO %^ 9/ X \\2- 112=. ASBESTOS STRUCTURE DATA < 5.0 um Number of Chrysote Asbestos Structures Counted : Number of Amphibole Asbestos Structures Counted : Number of Asbestos Structures Counted : | O 0 1O p > 5.0 um Q Total (O ^ (D \Q 1 ASBESTOS CONCENTRATION DATA Asbestos Concentration Str/cc > 5.0um: Asbestos Concentration Str/cc <. 5-Qum: 0,01k UiS" Chrysotile Asbestos Concentration Str/cc: \ \ 9-1. Amphibole Asbestos Concentration Str/cc: Analytical Sensitivity Str/mra2: lilia li Analytical Sensitivity Str/cc: Total Asbestos Concentration Str/mm2: Total Asbestos Concentration Str/cc: i i BAS --Below Analytical Sensitivity Included form provides formulae for calculating results. M A S JOB NMBER: sra GRID# # SQUARE# \ c \ - HV JL 'I :5~ ______ (n ? lo W \ iy t<r ' 1 s> n >T 11 pd0 Si t 3 W 1 P" M \ q L5 C\ S -- 7 TYPE STRUCTURE a?- A C-- J\l- 1^ V> C A 7 '/= E - Xq- /C= C- ^ - b C /W <c - /v -y r : o n-fS /n-/= /)7- / C- M-/S <- P P c M-p~ c. c. P *>"/=- f- page# | / 1 LENGTH WIDTH MICRONS MICRONS 6' Co Ov 1 0 0 ` 0| 3 *o ' t f , / J P c -7 . * o r 1 3 Ol0 "S 1: /'... I T ' 0 ,o\ CONFIRMATION MORPH. SAED EDS _ A?t-3 Z-cj -- - ------ -- --- ---- -- ------ ------ A C' .0 ' o:T~ -- , CjJ o, o 5 ---- __ o , 6, i 2- --- - / / oJ -- -- (* o ,{ ---- P - o O 1( --` E E o ,6 - ---- - 0 ^ 1*>j" -- - \ i L> C l o ^ -- ' ' 7 /i o 5 -- p -j- ^,\ ---- * 7 D. o y --- A ^ 6'<2^ oO c\ -J-- - P^< cr"*7- *6<>? -t *2.-- --- 1 P 0 , __ / D >0 "T -- - -- ' Ox \ -- KEYS TO ABBREVIATIONS USED ABOVE: TYPE : C = CHKYSOTILE AM = AMOSITE CR = CROC!DOUTE AC ^ ACT1NOUTE TR = TREM O UTE AN ==ANTHOPHYLUTE N = NON ASBESTOS STRUCTURE : F FIBER B BUNDLE C ~ CLUSTER M MATRIX OTHERS: NSD => NO STRUCTURES DEIECTED MORPH *=>MORPHOLOGY SAED =SELECTED AREA EIECTRON DIFFRACTION EDS = ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR = INTERROW SPACING NP = NO PATTERN MAS JOB NUMBER: M / a im '! -J.r PAGE # " 2 . c / SIR # o2? ,, 3)0 3 \ 3 23 3 iV 3 r3< r? 3 ? V o *ti VJ Vr /6 4 T r 1 0 n 3 r z 5" ^ GRID# TYPE STRUCTURE LENGTH WIDTH CON-IRMATION SQUARE# MICRONS MICRONS MORPH. SAED EDS C|- 3 I (LC'C' C- 33 C. ? 0\ 3 -- .- -- C y-r- o /V io sr/. r o io 3) --- ---- C- P C- n-p C_-- M-73, c_ p 0c. T> e-' / "Z /' 3 / -> c^V.o 1`O ^ C1 \o 1V (0 o , 0)5""" 0 u \ i 'l c 1 O, 2-5 CM -- -- -- _- -- _ -- -- --- C- A) C- r C- P T* C c.- P C r c p i-p c- pi '? y-F C- jn -F Pi-F c- ,yi' i- >i- sH P r f'i'p o O Oi } --- <c ^ Cl l . 2 O(O -- ---- X.'N o Z- --13 i 2- --- 3>o o .o r -- ---0\ c i --- ---Ot '-> >o 7" -- 1.3 o , 3 -- --- h o 1 -- "" *-C 'o S'" -- -- \ . V O.oC ---- 1</ o 0 5 "" --- V/ 3 *0 1 ---- -- h i Ol( --- - ------ / >- 7 >1 a> 'F C /H^ 0 .1 l * o c- ! --- -- ---- ). 3 O* 05"" c_ / P - / C *' 3 ><0 7 --" ' -- - MAS JOB NUMBER: M PAGE # 2/ / STR # re* y 7 rf . r< o 6 ( 6 ^ 3. C, 4 6 f GRID# TYPE STRUCTURE LENGTH WIDTH CONFIRMATION 1 SQUARE# MICRONS MICRONS MORPH. SAED EDS 0\ - T i C^-vvX^ c_ Ai' " / 5 ' /*? <3 P ...7. 1 . -- > , 7 o *>J --- Pr o p OtT -- -- P> OZ P 0. 7 -- a '-/5 / i v --- Po -F t <7 ? e- P C. /* '$ 7 iv 7 o uP O P >K o 1 U- -- - ---- -- -- - o A'P 1- n ~p / s )7 ` ir o , <b5 -- -- -- ------ -- <7 ^ 7 7 7o 7/ P" P O G o, ( -- P -P op oio 5 - Ai " P 0 ' e r O>j-- --- C_ r - P 3 "o . [ --- -- /* - p 7 o .o X -- -- P' * <X / * p p 0` ? 'd i' - -- 77. 75 77 ?P^ 7 7 ?? <x n-3> z P)^- P A - / 5- X /=C^- M 'jZ ' P o?< "S 6. X >< y * 1 c7 o 0` / 0 .1 7 O'O 5 0 .j) \ M o P 4<0) \ -- -- --- -- ----- -- ----- ------- - ? -r f& Pf i P- Y> H/ __ <x cr /* 'A o M-fi A!' P <7 /Y - P C- n - F e$ r^P 7 >` V <7 <Z O` X <0- ? )LJ C<; > -?T i' o o*&\ . | -- o^TT -- o. T --- '^ 7 " ----- `o J -- op . o-- --------- ---------- --------------- ----- -- X. MAS JOB NUMBER: S IR CaRlD # # SQUARE # P )- PS CevC^T ^0 ci i Y a L- 9 5^ I 9? ! oD ' / o) /o a A >3 7 PAGE if 3_y TYPE STRUCTURE _ /= A A '/S A! '/I... C c - ca M " a rc_ / > /= A Cl / v " 3 F C_' A S . 6 /A A c_ Z ? -/^ c_,, / ? - F LENGTH MICRONS /< ^ \ '^ Oi(p o - < / 6 > /> * & ~c^ V"? <9. & YcO a a k 1 Y 0 ir " c> * V7 O t (fl /- 0 0> 3 WIDTH MICRONS ' 05" <Z - 1 5 <9i of" >. CE c> ) Oi 1- O/ o 5 > , <-( )c03 > ^ 3 <3. 3 , )i o( 0^) 0 - c3 P - >5~ CON -IHMARON MORPH. SAED -- - EDS --- -- .-- -- -- -- ----- ------- -- -- A. __- ------- --- ----- ------ - -- -- ---- ----- -- ----- -- -- -- -- ---- .A - MRTERIRLS RNRLYTICRL SERVICES MON 06-MRR-95 Cuhsoh 1.280keV = 14 ROI CSIKcO 1.660: 1.810=169 13:22 0 .0 0 0 21 Ml2592-7 , CHRYSOTILE VFS = 64 10.240 MTERIRLS RNflLYTICRL SERVICES MON 06-MRR-95 13:56 Cursor: 1.280KeV = 14 ROI CSIKcO 1.660: 1.810=108 MTERIRLS RNRLYTICRL SERVICES MON 06-MRR-95 14:14 Cursor: 1.280keV = 15 ROI CSIKoO 1.660: 1.810=127 0 .0 0 0 34 MI2592-7 , CHRYSOTILE VFS = 3 2 10.240 MRTERIRLS RNRLYTICRL SERVICES MON 06-MRR-95 Cursor: 1.280KeV = 6 ROI CSIKcO 1.660: 1.810=120 14:27 MRTERIRLS RNRLYTICRL SERVICES MON 06-MRR-95 15:34 Cursoh 1.300keV = 2 ROI CSIKcO 1.660: 1.810=117 0 .0 0 0 15 Ml2592-7 , CHRYSOTILE VFS = 16 10.240 MRTERIRLS RNRLYTICRL SERVICES TUE 07-MR-95 Cursor: i.310keV = 6 ROI CSIKcO 1.660: 1.810=128 14:16 MRTERIRLS RNRLYTICRL SERVICE5 TUE 07-MRR-95 14:31 Cursor: i.310keV = 6 ROI CSIKcO 1.660: 1.810=150 0.000 12 M12592-7 , CHRVSOTILE VFS = 32 10.240 MATERIALS ANALYTICAL SERVICES TUE 07-MAR-95 Cuhsor s 1.310keV = 7 ROI CSIKoO 1.660: 1.810 =114 14:37 MATERIALS ANALYTICAL SERVICES TUE 07-MAR-95 14:43 Cuhsoh 1.310keV = 2 ROI CSIKcO 1.660: 1.810=124 0 .0 0 0 9 Ml2592-7 , CHRYSOTILE VFS 16 10.240 MRTERIfLS RNRLYTICRL SERVICES C uhsoc: 1 .3 1 0 K e V = 3 ROI CSIKcO TUE 0 7 -M R R -9 5 1 .6 6 0 : 1 .8 1 0 = 1 4 3 14:52 MRTERIFLS RNRLYTICRL SERVICES TUE 07-MRR-95 15:28 Cursor* 1.310KeV = 1 ROI CSIKcO 1.660: 1.810=47 MATERIALS ANALYTICAL SERVICES v A IR S A M P L E A N A L Y S IS ANALYST : ANALYTICAL PROTOCOL : L evel II SAMPLE DATA Oient : "\3 Sample ID :________ [M i\j f/Ve-cU f& nX-r. r /P -- ftlt'k- Sample Volume^oc : n. F3ter Type : Filter Pore Size,um : P'i /s aJ G Effective Filter Area, mm1 : 3 ^ sr~ REVIEW ER: i ANALYSIS PARAMETERS MAS Sample Number: M 1 X 5 n l Date Analyzed: Microscope Number: r Accelerating Voltage: Indicated M ag: Screen Mag: ______\ n O ______ fb - 'J ANALYSIS RESULTS AND CALCULATION DATA Grid Accepted, Low Mag : Number of Openings / Grids Counted: Percent Loading : / Grid Opening Size (um ): 1) f Average Grid Opening Area, mm1: 0 i Q & Area of Filter Analyzed, mm* : 0 % J?_____ 2) / / / \Q / x //& x / /A ASBESTOS STRUCTURE DATA <: 5.0 um Number of Chrysotile Asbestos Structures Counted : 0 Number of Amphibole Asbestos Structures Counted : O Number of Asbestos Structures Counted : 0 > 5.0 um D 0 0 Total _ o o ASBESTOS CONCENTRATION DATA Asbestos Concentration Str/cc > 5.0um: k Asbestos Concentration Str/cc < 5.0ura: 'V /r Chrysotile Asbestos Concentration Str/cc: Amphihnlr. Asbestos Concentration Str/cc: A /fr Analytical Sensitivity Str/mm1: Total Asbestos Concentration Str/mm*: iSiSlil Analytical Sensitivity Str/cc: Total Asbestos Concentration Str/cc: Mm BAS = Below Analytical Sensitivity In clud ed fo rm provides form ulae fo r calculating results. MAS JOB NlJMBER: M STR. # GRID# SQUARE# TYPE ft\ i/V ~{r Ff o<f S3 *f3 tf r F X ^5" STRUCTURE A / J x /iD x /iD zz^D A SiD A / i j> LENGTH MICRONS WIDTH MICRONS PAGE # CONFIRMATION MORPH. SAED EDS * ` 4 KEYS TO ABBREVIATIONS USED ABOVE: TYPE: C = CHRYSOTTLE AM = AMOSITE CR = CROCID O U T E AC = AdlNO LTTE TR = TREMOUTE AN = ANTHOPHYLLTTE N = NON ASBESTOS STRUCTURE : F - FIBER B - BUNDLE C CLUSTER M = MATRIX OTHERS: NSD = NO STRUCTURES DEIECTED MORPH MORPHOLOGY SAED =* SELECTED AREA E L E C T R O N DIFFRACTION ED S =ENERGY DISPERSTVE X-RAY SPECTROSCOPY IR INTERROW SFACING NP = NO PATTERN T. a <a 4%, V.>>* % MATERIALS ANALYTICAL SERVICES <? PHASE CONTRAST MICROSCOPY AIRBORNE F IB E R ANALYSIS PROJECT NAME: O u U f- Hh.* y m U y - M<tcLcg( CTy. SAMPLE NUMBER: M 12 u - I SAMPLE DATE: ___________ ANALYSIS DATE: ?>U 1 ^ 5 ANALYST: ************************************************************************** SAMPLE I D . __ 3 _________________________ l -- I -- -- l -- -- -- -- 10 -- -- -- --. -- -- -- -- .2 0 -- -- -- -- -- -- -- -- ~ -- -- -- -- -- 30 -- -- -- -- -- --- 40 1 . -- -- -- -- -- -- -- . -- -- 50 -- -- -- -- -- -- 1 -- 60 -- -- -- -- -- PUMP S E R . # C A L IB . DATE START STOP TIME * * * * * *TTFiFFr * * * * * *TTTTTT* * * * * TTTTWTT ___________ Pum p F lo w R a t e ( L /M in ) (F R ) ___________ S a m p l e D u r a t i o n i n M in . (T ) 2 3 5 . S i S a m p le V o lu m e = FR X T (V) TTTinnnnE'* * * * * * * * * * * * * * * *f * * * * * * * * * * * * %5 T o ta l F ib e r s C ounted (FCS) in Sam ple loo T o ta l F ie ld s C ounted (FLS) in Sam ple 1 .0 T o ta l F ib e rs C ounted (FCB) . in F ie ld B lank Ioo T o ta l F ie ld s C ounted (FLB) in F ie ld B lank 3 'S 5 # m i A r e a o f 2 5 mm F i l t e r (AF) , 0 0 1 ^ 5 G r a t i c u l e F i e l d A re a (GFA) i n s q . mm ************************************* CALCULATION OF F IB E R DENSITY (E ) -- -- 1 -- -- -- b -- -- -- -- --- -- -- E = FCS - FCB -- 70 FTC FLB -- -- -- GFA E = \'\ F/m m 2 ************** ********************** -- -- -- 80 1 -- -- CALCULATION OF F IB E R CONCENTRATION (C) IN FIBERS PER c c C = (E)JA F) -- 1 -- 90 1000V --- -- -- C = 0.003 F /C C -- -- -- -- --- 100 NOTES : .'597 Parkway Une Suite 250 Morons';. Georgia 30092 (10-1) 4-18-3200 TAX (4(H) 368-8256 5 :I* ' MATERIALS & ** ANALYTICAL Z t >. SERVICES 0 - Hi ^ " PHASE CONTRAST MICROSCOPY AIRBORNE FIBER ANALYSIS mm PROJECT NAME: (Xk* UwlmxZl-y - Cfy- SAMPLE NUMBER: M l 2 .6 ^ 2 -Z SAMPT.E n i T R ; ANAT.YSTS DATE: 3 / > / <l 5 ANALYST: ************************************************************************** \k -- 2 k. 1 z SAMPLE ID. __ I --Z 5 --- to^ -- 1 W k. 10 z M H \ H ... .20 PUMP SER. # CALIB. DATE START STOP TIME ************************************* _________ Pump Flow Rate (L/Min) (FR) 7 zk. 7 \h. k. I \K Sh- - --3 K-- ---- --- 1 \>L z -- 30 -- 40 . 4 _________ Sample Duration in Min. (T) 3 2 5.2 Sample Volume =__FR X T (V) ***************** *******TF*********w** 101.0 Total Fibers Counted in Sample (FCS) 5% Total Fields Counted (FLS) in Sample 7- Tot.alinFiFbieerlsd CBoluanntked (FCB) I 2 : K- K I i . . 5 \>k -- 3 1 50 1 ' 60 1 0 0 Total Fields Counted (FLB) m Field Blank 335 Area of 25 tom Filter .(AF) ,00735 Graticule Field Area (GFA) in sq. mm ************************************* CALCULATION OF FIBER DENSITY (E) E = FCS - FCB 70 FIS FCB GFA E = Z\2.\ F/mm2 ********** ***'*'*'*"********************* 80 CALCULATION OF FIBER CONCENTRATION (C) IN FIBERS PER cc C = IE) (AF)_ 90 1000V C = 0,252- F/cc 100 NOTES : 3597 Parkway Line Suite 250 Nprcross. Georgia 30092 (404) 448-3200 FAX (404) 368-5256 MAI'ERIALS 49* ANALYTICAL * SERVICES 0 PHASE CONTRAST MICROSCOPY AIRBORNE FIBER ANALYSIS PROJECT NAME: Ovkkt. Un.'wor-i.'Lv - Cir. SAMPLE NUMBER: M lZ5S12- 3 SAMPLE DATE: ANALYSIS DATE: 3/fart5 ANALYST: ************************************************************************** SAMPLE ID. __5______________________ 10 PUMP SER. f CALIB. DATE START ______ STOP _____ TIME _______ ************************************* .20 ________ Pump Flow Rate (L/Min) (FR) ________ Sample Duration in Min. (T) 2 H 5. i i Sample Volume - FR X T (V) 30 ****************** ******ir************ H .5 Total Fibers Counted (FCS) in Sample | 0 0 Total Fields Counted (FLS) 40 in Sample TO Total Fibers Counted (FCB) . in Field Blank 50 100 Total Fields Counted (FLB) xn Field Blank Yt. 3$5 Area of ^ 3 _mm Filter CAF) ,O Q 7 % 5 Graticule Field Area (GFA) 60 in sq. mm ************************************* CALCULATION OF FIBER DENSITY (E) E = FCS - FCB 70 F i g FLB GFA E = ^ 0X);\V m m 2 <f * * * 'jit 4c* * * * * * * * * k-k'k+c-k-k-kic'k'k'k'klclc'klclclclc 80 CALCULATION OF FIBER CONCENTRATION (C) IN FIBERS PER cc C = (E) (AF) 90 1000V (L.O.Oj C = < 0 . 0 /,T F / C C 100 NOTES : 3997 Parkway Lane Suite 250 Uotcioss. Georgia 30092 (10-1) 418-3200 FAX (404) 368-8256 &a- < MATERIALS ANALYTICAL 0 ,, V * SERVICES . PHASE CONTRAST MICROSCOPY AIRBORNE FIBER ANALYSIS PROJECT NAME: OtAe Un s!4-y/ - M-cJl.'c*! Or, SAMPLE NUMBER: All ZSqZ -*f SAMPLE DATE: _____________ ANALYSIS DATE: 3 A A * ___ ANALYST: J Z Z ************************************************************************** -- k ---- z SAMPLE ID . ___k______________________ III >I. --Vi l--^z. Z"K . -- -- 10 PUMP SE R . # CA LIB . DATE START ________ STOP ............. TIME ***************** ******************** J20 __________ Pump F lo w R a t e (L /M in ) (FR ) I -- -- A __________ S a m p le D u r a t i o n i n M in . (T ) 3 7 U t S a m p le V o lu m e = FR X T (V) I -- ! -- -- 30 **r**** ** ** ** ** ** ** ** ** * * * * * * * * * * * * 3F * * * * * * * * * * * * 2 I ! 5 5,0 T o ta l F ib e rs C ounted in Sam ple (FCS) -- --' a -- A . -- -- ^2. -- . 40 -- 100 T o ta l F ie ld s C ounted (FLS) in Sam ple 7 .0 T o t a l F i b e r s C o u n te d (FCB) . in F ie ld B lank -- 2 , -- Z ( 50 100 T o t a l F i e l d s C o u n ted (FLB) x n F i e l di Btjlxaanmkc 2 i .. ^2 -- --- -- i 3 l` -- I 60 -- --- --- i I^ 2 7 0 -- -- !I! -- . -- 2 . -- -- 80 --- ik I z ! -- \ -- -- 90 -- - -- -- --- -- 3 9 5 *i*2~ A r e a o f 3 mm F i l t e r (AF) , 0 0 7 ^ 3 G r a t i c u l e F i e l d A re a (GFA) i n s q . mm ************************************* CALCULATION OF FIB E R DENSITY (E ) E = FCS - FCB FL5 FLB GFA E = 7 3 .7 F/mm^ ************************************* CALCULATION OF FIB E R CONCENTRATION (C) IN FIBERS PER c c C = -(E) ( AF) 1000V c = 0* 07 3___ f / c c .-- - -- H. \ -- 100 NOTES : 3j97 Parkway Lane Suite 250 Noixross. Georgia 30092 (104) 44S-3200 FAX (404) 368-8256 a MATERIALS a * l V ANALYTICAL o A 11 SERVICES a PHASE CONTRAST MICROSCOPY AIRBORNE FIBER ANALYSIS PROJECT NAME: Pnkr* tU.'vei-L-P, -/Aei.' c-al C-fr SAMIPLE NUMBER: /V1I2532-5 SAMPLE DATE: ANALYSIS DATE: 15 ANALYST: ************************************************************************** SAMPLE ID . __ 12____________________ _______ _ 10 PUMP SE R . # CA LIB . DATE START STOP TIME * * * * * A v m n n ir* * * * * *iirT$ir$T* * * * * *TFw m Eic .20 __________ Pump F lo w R a t e (L /M in ) (FR ) __________ S a m p le D u r a t i o n i n M in . (T ) ZH~M ft S a m p le V o lu m e = FR X T (V) 30 ** * * * * * * * * * * * * * * * * * * * * * * tt* * * * * * * * * * * * 5.0 T o t a l F i b e r s C o u n ted (FCS) in Sam ple 40 10 0 T o ta l F ie ld s C ounted (FLS) in Sam ple 1.0 T o t a l F i b e r s C o u n te d (FCB) . in F ie ld B lank 50 10 6 T o ta l F ie ld s C ounted (FLB) in F ie ld B lank 355 inm1 A r e a o f 3-5 mm F i l t e r (AF) ,0 0 7 5 5 G r a t i c u l e F i e l d A re a (GFA) 60 i n s q . mm ************************************* CALCULATION OF FIB E R DENSITY (E) 70 E = FFCESS - FFCLBB GFA E = _________F /m m x ************************************* 80 CALCULATION OF FIB E R CONCENTRATION (C) IN FIBERS PER c c C = 1_E),(A F). 90 1 0 0 0 V C L 0.P.) C = 0 , 0 1H F / c c 100 NOTES : 3577 Parkway Lane Suite 250 Noraoss. Georgia 30092 ('101) 4-18-3200 FAY (404) 368-8256 ft *** MATERIALS % ** * * * analytical SERVICES PHASE CONTRAST MICROSCOPY AIRBORNE FIB E R ANALYSIS PROJECT NAME: Qv^Ue- lU .' vgrSt'Ty - (V\ecI.,&<J C-fI rI-#. oSAMPLE NUMBER: A 1 I2 5 1 ? - L SAMPLE DATE: ANALYSIS DATE; _ ANALYST: ( j j f i ************************************************************************** SAMPLE I D . __ $___________________ _ _ _ _ _ -- -- -- --- -- -- -- -- -- 10 -- -- -- -- -- -- -- -- -- .20 -- -- -- -- -- -- -- -- -- -- -- -- -- -- --- -- 30 -- -- 4 0 -- -- -- -- -- ---- -- i -- 50 -- -- . --- -- -- -- -- -- -- 60 -- -- -- -- -- --- -- -- 70 -- -- -- -- -- -- -- -- -- -- 80 % i -- -- -- -- -- -- -- -- 90 PUMP SE R . # C A LIB . DATE START ________ STOP _ _ _ _ _ TIME _________ ************************************* __________ Pump F lo w R a t e (L /M in ) (FR) __________ S a m p le D u r a t i o n i n M in . (T ) S a m p le V o lu m e = FR X T (V) ****************** ******TT**** ******** 3.5 T o t a l F i b e r s C o u n te d (FCS) in Sam ple 100 T o t a l F i e l d s C o u n ted (FLS) in Sam ple loo1 .0 T o t a l F i b e r s C o u n te d (FCB) . in F ie ld B lank T o ta l F ie ld s C ounted in F ie ld B lank (FLB) 3g3 A re a o f _A 5_m ra F i l t e r (AF) .0 0_7__%_$__ G r a t i c u l e F i e l d A r e a (GFA) i n s q . mm ************************************* CALCULATION OF FIB E R DENSITY (E ) E = FCS F ig FCB FLB GFA O -.ap.) E = v<, Sd. I F/mm ****TF3TiF3cTr*****_**'* * * * * * * * * * * * * * * * * * * * * CALCULATION OF FIB E R CONCENTRATION (C) IN FIBERS PER c c C = IE)(AF) 1000V --- -- -- -- -- C= * _ F /c c . 1 -- -- -- -- 100 NOTES : * Va(timi1 n4 n 3597 Parkway Une Suite 250 Morctoss, Georgia 30092 (404) 448-3200 FAX (404) 368-8256 M AIKIALS A N M Y nCA L 9 ,, V * " SERVICES o PHASE CONTRAST MICROSCOPY AIRBORNE F IB E R ANALYSIS PROJECT NAME: UmV<r>-fy - /4eoi.'c<c( C fr. SAMPLE NUMBER: M 12 5 * \2 -~ ] SAMPLE DATE: ANALYSIS DATE: 3 / i n s ____ ANALYST: m u * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * ******il1c SAMPLE I D . __ 3 __________________________ ---- I l ---- -- ---- I -- I-- -- --. -- I I 10 PUMP SE R . f ---- C A LIB . DATE START _ _ _ STOP ............. TIME _ _ _ _ _ * * * * * *Tnr$W$TF* * * * * lEWTicWT* * * * * *W3F$lFitTT I . I - JZO __________ Pump F lo w R a t e (L /M in ) (FR) -- :-- __________ S a m p le D u r a t i o n i n M in . (T ) ---- I I ---- -- -- I --. K-- I -- -- -- -- 30 -- I-- K -- Je. 40 -- ---- ----- . -- I 50 --- --- -- -- -- 60 -- ----- 3 1 L I t S a m p le V olum e = FR X T (V) t* * * * * * * * * * * * * * * * * * * ****lF*** * * * * * * * * * 31.5 T o t a l F i b e r s C o u n te d (FCS) in Sam ple |06 T o t a l F i e l d s C o u n ted (FLS) in Sam ple 1 . lo o 3 SS T o tal F ib ers . in F ie ld T o tal F ield s in F ie ld A rea o f 2 5 C ounted B lank C ounted B lank mm F i l t e r (FCB) (FLB) (AF) ._0_0_1__2_5__ G r a t i c u l e F i e l d A re a (GFA) i n s q . mm k'k'k ' k ir tt ' k ic ' k i c ' k i c i d c ' k ' k ' k ' k ' K ' k ' k Ic'k'k'k'k'k'k'k 'k'k 'k'k'k ic'k ' k CALCULATION OF FIB E R DENSITY (E) -- I ---- -- -- -- __ I z -- -- K. I .I -- -- -- 70 -- -- 80 I --- 90 K. ----- . E FCS - FCB FLS___ FLB GFA E = 3 1 . 2.__________ F /m m 2 ****************** ******************* CALCULATION OF FIB E R CONCENTRATION (C ) IN FIBERS PER c c C = IE ) (AF). 1000V c = 0 0 3 2 .____ F / c c ~ -- 100 NOTES : 3597 Parkway U ne Suile 250 Nortross, Georgia 30092 (101) 145-3200 FAX (104) 368-8256 u' a1 MATCRIALS O1 ANALYTICAL * J&a* SERVICES O PHASE CONTRAST MICROSCOPY AIRBORNE FIBER ANALYSIS PROJECT NAME: Ptt.k< U*) yer.'4-y - Meol.'c*! Cfy SAMPLE NUMBER: M \ Z 5 ^ \ 2 ~ 9 SAMPLE DATE: ANALYSIS DATE: i J f . l ' l ANALYST: J f f i Z I ************************************************************************** SAMPLE I D . 10________________________ -- 1 -- -- -- hi'eld B fg h k -- -- --- -- --- 10 PUMP S E R . # CA LIB . DATE -- -- -- -- -- *-- y% -- f*.-- .20 START ________ STOP _ _ _ _ _ TIME _________ ************************************* __________ Pum p F lo w R a t e (L /M in ) (FR) -- -- -- -- --- __________ S a m p le D u r a t i o n i n M in . (T ) -- -- -- -- -- -- --- K.. -- -- -- -- l 30 -- __________ S a m p le V o lu m e = .FR X T (V) "$TnETElFiF9F3t* <r* * * * * * * * * * * * * *7T** * * * * * * * * * * J L fi. T o ta l F ib e rs C ounted in Sam ple (FCS) -- 40 lo o T o t a l F i e l d s C o u n te d (FLS) in Sam ple -- . -- -- -- -- T o ta l F ib e rs C ounted . in F ie ld B lank (FCB) -- --. -- --- -- 50 T o ta l F ie ld s C ounted in F ie ld B lank (FLB) -- -- . -- -- ' m A r e a o f ^ .5 mm F i l t e r (AF) .0 0 7 8 5 G r a t i c u l e F i e l d A re a (GFA) -- -- -- -- 60 i n s q . mm ************************************* --- -- -- -- -- -- -- -- . "-- -- -- --- -- -- -- -- -- i -- -- -- -- i -- -- . 70 -- -- *--- -- 80 -- --- -- i 90 -- CALCULATION OF FIB E R DENSITY (E ) E = FCS - FCB F I S FLB GFA E = ______ _____________F/m m 2 ' k i c k ' k 'i c k k k * * * i t WWWilOk k k k k k k k k k k k k k ' k ' k ' k l c k ' k ' k CALCULATION OF FIB E R CONCENTRATION (C) IN FIBERS PER c c C = .(E).(AF) 1000V C = w/a. _ F /c c --- -- -- -- 100 NOTES ; F.V.Iot fclqhk. 3597 Parkway Lane 4 Suite 250 Notaoss, Georgia 30092 (404) 448-3200 FAX (404) 368-8256 MATERIALS ANALYTICAL SERVICES, INC. 3597 PARKWAY LANE, SUITE 250 NORCROSS, GEORGIA 30092 (404) 448-3200 CHAIN-OF-CUSTODY Page 1 of 1 client: DUKE UNIV.MED CTR MAS Job #: M12592 contact: COURTNEY SMITH Phone No: 1 (919)-286-3232 Date Reed: 03/04/95 client p .o .: u n k n o w n TYPE OF ANALYSIS Type : AIR Requested T.A.T.: 72 Hours Method: TEM & PCM Due Date: 03/07/95 1) 3 2) 4 3) 5 4) 6 5) 7 6) 8 7) 9 8) 10 Sample N u m b e r (s): 0 0 0 0 0 0 0 0 Samples Relinquished By: Samples Received By: S FITZGERALD Condition of Samples: o k ______________ Client Docs: ~ Z c o C - 1 Co ______ Init File Rev: _ Sample Prep By: Sample Analysis: Report(s) Sent By: 2. f ftif hxZ- Sample(s) Ret. By: Time: 08:08 Date: _______ Date: 1 > ~ b j Date: ___________________ Date: ______________ _ DUKE UNIVERSITY MEDICAL CENTER Occupational Health Service Mr. Bill Egeland MAS 3597 Parkway Lane, Suite 250 Norcross, GA 30092 2 March 1995 Dear Mr. Egeland: Enclosed please find the asbestos filter samples we discussed and two copies of a chain of custody form. The chain of custody form indicates the requested analyses and the billing information. We request expedited analyses of these samples (three days turnaround). Please FAX results to us as soon as they are available (FAX number: 919-286-1021). Once the analysis is completed please keep a copy of the chain of custody form and send one back to Dr. John Dement with the analytical results. Thank you very much for your help with obtaining the filters and with providing necessary information about the sampling. Sincerely, Research Associate D iv isio n o f Occupational and E n v iro n m e n ta l M e d ic in e B o x 2914 D urham , N orth C arolina 27710 (919) 286-3232 FA X (919) 286-1021 APPENDIX C SKETCH OF GLOVE BOX USED FOR ABRASION TESTS hard F y u - r d , 4 _ '- ^ fc U f EXHIBIT "E" REPORT FROM DR. DEMENT DATED MARCH 29, 1995 DUKE UNIVERSITY MEDICAL CENl t ^ Occupational Health Service March 29, 1995 Sheryl Moore Ingram Ness, Motley, Loadholt, Richardson & Poole 151 Meeting Street, Suite 600 P.O. Box 1137 Charleston, South Carolina 29402 Re: Welding Rod Testing Dear Sherry: Enclosed are results of TEM studies of dusts which were collected during our study of used welding rods. During the bumping tests within the enclosure, the used rods were found to be friable rsulting in visible dusts which accumulated on the bottom of the chamber. A sample of this dust was collected and submitted for TEM studies. Results of the TEM studies confirmed the presence of chrysotile asbestos with the concentration ranging from 1.8 to 5.5%. The mean fiber length was 3.55 micrometers with a significant proportion longer than 5 micrometers. Please call if you have questions. Attachment D ivision of O ccupational and E nvironm ental M edicine Box 2 9 M D u rh a m , N o rth C a ro lin a 2 7 7 1 0 (919) 2 8 6 -3 2 3 2 FAX (9 1 9 ) 286-1021 MATERIALS ANALYTICAL SERVICES * March 24, 1995 Dr. John Dement Duke University Medical Center 2 2 0 0 W . Main Street, Suite 700 Durham, NC 27710 RE: Welding Rod Residue/Powder Dear Dr. Dement: W e have completed our asbestos fiber size distribution analysis for the welding rod material that we received from your group on March 13, 1995. Our report is enclosed, but briefly our results are as follows: 1. Weight of chrysotile in the sample was between 1.8 to 5.5 % as determined by the Chatfield Method. 2. Size distribution: Mean Fiber Length = 3.55 microns Standard Deviation = 4.26 After you have had a chance to review the report and have any questions, please do not hesitate to give me a call. Sincerely, President WEL/mac Raleigh Office: 6)6 H utton Street Suite 101 Raleigh, N orth Carolina 27606 (919)829-7041 FAX (919) 829-5518 3597 Parkway Lane S Norcross, Georgia 3009 (404) 448-3200 FAX ( ANALYTICAL SERVICES * WELDING ROD RESIDUE ANALYSIS Submitted to: JOHN M. DEMENT, PH.D. CIH DUKE UNIVERSITY MEDICAL CENTER March 24, 1995 By: William E. Longo, Ph.D. Raleigh O ffice 616 H utton Street Suite 101 Raleigh, N orth Carolina 27606 (919) 829-7041 FAX (919) 829-5518 Atlanta Office: 3597 Parkway Lane Suite Nortross. Georgia 30092 (404) 448-3200 FAX (401) MICROANALYSIS PROJECT REPORT CLIENT: Dr. John Dement INSTITUTION: Duke University Medical Center PROJECT: Welding Rod Analysis DATE: March 24, 1995 MAS NO: M 12664 SUMMARY: The object o f this stu d y w as to determine the w eight percent range o fch ryso tife in the welding rod residue and determ ine the chrysotife fiber size distribution in th e material. Our results show that the chrysotile weight percent range w as found to range from 1.8 to 5.5% . Also, the m ean chrysotile fiber length calculated from 2 0 0 m easured structures was 3 .5 5 microns. DESCRIPTION OF SAMPLE PREPARATION AND ANALYSIS: Weight Analysis: The welding rod residue was analyzed by the Chatfield method to determine the weight percent of asbestos present. This analysis was performed as follows, 0 .1 0 2 9 g of the residue was placed in a muffle furnace and heated to 4 8 0 C for 12 hours. The sample was removed from the furnace and allowed to cool to jo o m temperature and reweighed. Sample weight after ashing was 0 .0 9 6 2 grams. The remaining residue was placed into 100 ml of 3% HCI in a 150ml Erlenmeyer flask. The solution was allowed to stir for 30 minutes and filtered through a pre-weighed 0.22/ym polycarbonate (PC) filter. The PC filter was dried in a desiccator for 24 hours at room temperature and weighed. The sample weight after the acid dissolution was 0 .0 3 7 7 g . After weighing, the remaining residue was suspended in alcohol and drop mounted onto a TEM grid and placed in a JE0L 1200X transmission electron microscope. The sample was scanned by TEM at a screen magnification of 2 0 ,00 0X . A visual estimation was made of the percent of chrysotile present versus the amount of non-asbestos particulates. These results were compared to the percent loss during both muffle furnace and acid dissolution analysis. Fiber Size Distribution: Approximately 10 mg of welding rod residue was placed in a 25ml glass vial with 15ml of alcohol. The sample was capped and shaken by hand. A 2ml sample was removed from the suspension and filtered through a 0.22pm PC filter. The filter was allowed to dry and prepared for TEM analysis using a direct preparation technique. The prepared sample grid was placed in a JEOL 1200 EX TEM and examined at a screen magnification of 20,00 0X . For the fiber size distribution, the first 200 chrysotile structures were measured for both their length and width. This data is shown in the enclosed TEM count sheets. FLOOR TILE ANALYSIS BY CHAT FI ELD METHOD Sa me l * !: :1i 2 ,:c 4 ; i I .A l v ai MUFFLE FURNACE ASHING RESULTS v vai weight (A> v i a l we i g h t , p l u s s a mol e wei pi?t \ B ' Or i g i 's i s a m p l e w s i ghc A i We i g ht o f v i a ] and. samp Vs a f t e r a s h i n g (C) Samp 1s w e i g h t a f t e r a s n i n a ( C - a ) O. 1029 -j iWi; ,LI-. 4 2 0 4 C O .0962q (WVZ) Muffle Furnace Ashing Results After Acid Dissolution P o l y c a r b o n a t e f i l t e r w e i g h t (D; F ilte r plus dry sample weight () Sample weight a f t e r a c ic d i s s o l u t i o n (E-C) Percent weight of organic material (W l - W2 1 ' 'LOO = W1 Psrcsrt w eight of do l e m i t e / c a l c i t a ( UP - W.T,) v LOO = Wi E s t i m a t e d u p p e r and Lower p e r c e n t a s b e s t o s by TSM s c a n i e r r e c weight cf asbestos LI.: _ c ; r : ;< W i W L / . $ 7t 0X5323 0.0377g (W 3 ) s 7q /f 7. we r iJhp l r.r ASBESTOS FIBER SIZE DISTRIBUTION Duke University Medical C enter Q cr -- Tl "*O 3 8 O n MAS JOB NMBER: sra G RID# # SQUARE# \ ?> S' C ? ? lo \\ \T- \3 Mp ______ Zo 2-1 Z.Z- 7.5" . M \X(U<j-\ TYP STRUCTURE F CF F C_ F . e F c_ F - cF F CF F cF C r t - f=- <L F 6F c, F F r~ c F F c F cF c FF-F r F C F oF '3 - cr^ ^o 6 PAGE # I LENGTH WIDTH CONFIRMATION MICRONS MICRONS MORPH. SAED F 0 0 c 3 V-5 X - e. o -^ 5~~ 1` A. *o j 3l *S~ \ ' 7 1(o * O 7 2 .P6-r* ( - ^ b 3 -7 . / jF Oi o r o, I Oi 1J" 01 l *o3 iio ^ 3- r O. (6 ~ y*-r" >. % ^| * h ^ CH J *oF * y 2O| i L U C l. ( * \,% -l . Z). 3 >. o2 <o O ' ( '1 no f i c? t. 5 KEYS TO ABBREVIATIONS USED ABOVE: TYPE: C = CHRYSOTILE AM AMOSITE CR = CROCIDOUTE AC = ACT1NOLITE TR =TREM OUTE AN = ANTHOPIIYTLTTE N = NO N ASBESTOS STRUCTURE: F FIBER B BUNDLE C CLUSTER M MATRIX OTHERS: NSD NO STRUCTURES DETECTED MORPH = MORPHOLOGY SAED SELECTED AREA ELECTRON DIFFRACTION EDS => ENERGY DISPERSIVE X-RAY SPECTROSCOPY IR INTERROW SPACING NP = NO PATTERN T ,~<j . MAS JOB NUMBER: M \J l f \ PAGE # > L CO z __________ ^ _ 2 -7 . 2.1 3c> 3>\ 13 3 "W 3 ST b C 37 3S Mo m' VL V/ HG r) T3 ry rr -c GRID # SQUARE # __ TYPE STRUCTURE LENGTH Wid t h CONFIRMATION MICRONS MICRONS MORPH. SAED EC < P / 7 o / c jT" > p - ^7 - / C P- 3k / . 6> bsl S 3 ,o <3>. j f E> t 6 ) O (j <L p p p Oi 7 A 7 Vi y 3 vo (Cj^ 31 o 'S" D i F O 'y o p c F 1 p 6 F 3 >r 3 -* 3 ^ -/ 7 , > -------- 1-------6 M o -l o. I c c_ <-- cC c_. c_ c_ c_ C C(_ c c__ ?> P >* ? P 7 F o 3 P P /* 6 p (p V 'i-- F 6* < t~~ an P i y p h r p ^7 p `'O p 5^ , r p ____________ /' v 5". .65" J e^t >- ) d>* o 0> 0 *' 1 -o r " ---------a 3 tF 0*2xT"^ v CD -i i S *i tfk| 3 .^ 6 MAS JOB NUMBER: M ,\ 'X L if ^ - 1 page # 3_l STa # _-T7 re r*7 (,0 _ ti J 6r l (0 (o? *7 0 7\ 7J 7* 74 77 1? ?? io a> ... ^ a 7/ 75" GRID# SQUARE # TYPE STRUCTURE Length WIDlH CONFIRMATION microns MICRONS MORPH. SAED EI C P OP jV>o 7 57 7 'i - P .. h1 * 7 c c_ P hl '5 h 1 0. \ P cP / * C'f 3 0 0>6^ P / Cp O.03^ CP O'7 ' / cP hl `65^ c P / >cr^ c P ^ *c> CP o2 Ti -- P D> ? >ic>5 6^* p 0P c P~ c F* A? 5. S 3 ^ /< P) -o r 7. oj,^- c_ p ^ */ c. / Ce c cp C_ p p lo ^ y l ^ ` >.y-- c ?_u> ?*< i j 3 c_ p 5 0 r " " c p ' p < i ` ( r p 7. 3 ^ ` Oj ' e_ ~ r. p 6*9 /i ` l 0i6J^ e 0 / `3 . T-- 1.(9 1 , MAS JOB NUMBER: M \ ,> 7 6 V - ( page# jj/_ / s ra # St ?? . _____ 3 233 `W qr ci 6 39 9? lOu ll OL )o3 10 ^ lo r~ /o V5 ol (? m ll 0 Hl Ht 113 iP / ;r GRID # SQUARE # " TYPE STRUCTURE LENGTH WIDTH CONFIRMATION MICRONS MICRONS MORPH. SAED EC F Oi o j 7 P . <? * / . 7 . 3 O / ? 7 2. 2- c_ t> c_ P h & /W *5^ O. 2 6 . 2<9* 0 j r ~ C 'P '-*' V . C .) > 6? ?*. 0 5 " " C F cr -r/"<""P*----- D ' o S ~ ~ 5 < 9 <3 <t>s~ C M ' <3* 9 - o . 3 o p C S' c p -P 39 o .T )*o -r >, i F'' /D-<F <3t o j c P Jh o Ol / J ^ c~ p * > - 0 <D * O i c_ F F F ) l /' 3 3 `5^ D-o f > 03"' c P c_ P <1 F <7 C r, ^ 1? \/ 0 ' oj ' >o r c_ /' > c~ F /^2 -o Do $ ^ C. P A <07~ o c F . _ . Di 7 P p ? -o( cP ^ 7 >*O> .,____ MAS JO B NUMBER: M \ y '- \ page # S j_ str # (IC , in u ff in |X o 12-1 yvi~ (2-3 \z<r 127 |2> )?0 PI IS *. 133 w pr \0U 137 n*) f/o --.y y / /y ^ /vy tw , GRID # SQUARE # ma TYPE STRUCTURE LENGTH WIDTH CONFIRMATION MICRONS MICRONS MORPH. SAED EDS O .. .... 3 . 3 O t-e 2- F .... / 3 o . o r C h / O c .o .s ^ <s- F A 7 <v 3 . oi'"- 6 - c ^ 4-- F /. </ o> 1 C ' F /a ' 0 0 . Q ^ CF C K Le> 0 y l /= F c F 6F C C F F CL F . C- F <i_ c F <F- F cS- 'CT F c c_ F c_ F c_ F- / 1 J -F 1*7 ^ J"o / c2 - J /' ho ( /./ /? * ? 7.3 A /< 7 /n / 7 /< y~ <7 *- '04 0 / ' / OL J O J" . f _ 0. 3 a <of >-a J~~ * Q> -S < JT" < 0 (/ d - Qr )' > j >< "2- / t n ` o r " -' ... F c_ /^ ? <1 0 D 'O F ^ 'o5~ l*2> MAS JOB NUMBER: STR # /y d (< S 1 fy ? R ID # SQUARE # /y i is o /f l /f t{& /T /' ,s i~ t $ to m /r f /n / l s <=> td l ! to ^ /< ? / / / r / (s (, \b l Ui no nt 71 173 n 'f M \3 -2 -< ^ < / - I PAGE # M2-L TYPE <_ d STRUCTURE T e n g ttT M ICRONS /? A 7 f= < 0 p> y 0 r \ WIDTH M IC R O N S V 3 - c f~ CONFIRMATION MORPH. SAED ED 7^ O /" F C~ S, 3 A // V 0> ) O . C: _5 ' >J < /* <c~ C- /? ' A c <L- Cc. o <Cd. <L_ f ' cf- <-* d c_ CC-- /= - FF F- / J . Z/.o o? * 3 /* /. ^ J -o A 7 .0 < 7 /'c / < ? -j /* /-.o 3 . <5> /. r -? ' o / $ ` -> (` t (/. > /( 3i r h r J. 3 * 'l <o_r~ ` 1 <* 3 d * O co y .Z <d 4 o* o r ^ // j K / S ^<D j J* 3 >4 J J 1d f <9 3 M r" d ` i>r^ jr O 'e r " d - d 5"" ' 5 < - o S ~ ~ MAS JOB NUMBER: M XQL'^y'-- ( PAGE # STR # 17 ^ nn 177 m If ...7/1 ........../ fTl*> 1 t'j nr IU (8 1 in 1 ^ Mo t<*t 1 !?S IW Pr iw m 3V D G R ID # SQUARE # TYPE <=- <y <d <L <3 CI CS c c_ c C_ iS C7 <cC_ C c_ c_ c_ C- CLC. c STRUCTURE P P P y LENGTH M ICRONS . / 3 *o So O. 3 ~ T< cP /< / r p p F p 2 P P P P f --? /^ o D* <S l y' 3 >7 / ' I 3 JV P <?. y A < ? 0 ~" A 7 y *-'o o?^ O 7 -0 hl 1 / fi> 2 -c p W ID TH CO N FIR M A T IO hJ M ICRONS M ORPH. SAED E a z___ Cv 1 o .1 O `O 5 0 -0 jf" <9 1 o 3 c3 < 'Z. ' o * S - O1 <>o O *0 5 '"' 0 -o S 'frl' " >` K `f . . w . >* ^ / o* O . O j ^ 'O'SP' o- / 5 * ( ,oy^ o >y~ <9 , 6? MAS CHAIN-OF-CUSTODY *** * * * * * A ^ **P MATERIALS ANALYTICAL SERVICES Client: JOHN M. DEMENT. Ph.D.. CIH Contact: JOHN M. DEMENT. Ph.D.. CIH Phone #: (919) 286-1722 Mas Job #: M12664_______________ Date Reed: 3/13/95 ... _ _______ Client PO: HELPING ROD ANALYSIS BULK SAMPLE ANALYSIS SAMPLE NUMBER(S) 1) MV A 0685 D2917A______________________ 11) ______ 2) ______________________________________ 12) ______ 3) _______________________________________ 13) ______ 4 ) _____________________________________ 1 4 ) ________ 5) ________________ ______________________ 15) __________ 6) _______________________________________ 16) ______ 7) _______________________________________ 17) ______ 8) _______________________________________ 18) ______ 9) _______________________________________ 19) ______ 10) _______________________________________ 20) ______ Samples Relinquished By: COURTNEY SMITH______________ Samples Reed. By!_______________________ Time: Condition of Samples: OK____________________ Client Docs: COC. COVER LETTER Init File RevJ____ Sample Prep by!___ Date! Sample Analysis!__ Date ! Report(s) Sent!___ Date! Sample(s) Ret. B y 1, Date! Raleigh Office: 616 H utton Street Suite 101 Raleigh, N orth Carolina 27606 (919) 829-7041 FAX (919) 829-5518 10:00 AM Atlanta Office: 3597 Parkway Lane Suite 250 Norcross, Georgia 30092 (404) 448-3200 FAX (404) 368-E SAMPLE ANALYSIS REQUEST & CHAIN OF CUSTODY DATE: 10 March 1995 LABORATORY: MAS LABORATORY CONTACT: Bill Longo/Bill Egeland DUKE CONTACT: Dr. John M. Dement INVOICE INFORM ATION , Jo h a M . D etnert, P b.D ., C1B b tik ft U nivtraity Medical Center , , 2200 W . Malt SU, Suite 700 ' ' I ,, , B o x 2,9s1s4 f ***''/> 4 I"s, ^Duthi%tn ^27,JQ>v. ' ",, -f-4 ' / ' ,, fY, ' '' ' '' DESCRIPTION OF ANA L Y 8 E S REQUESTED: ip -- b-- -- -- b m b b b b b b b w b b -- bbb-- b-- b b b c -- -- bbbbbbu^bbwbmbb-- BsaBB^asgaBsaBBa--c s s a s g B S SJ '*" --.ssasBaesB. fi-Xi t I Transmission electron microscopy analysis of bulk sample of I powder from welding rod abrasion test. Determine size | distribution for asbestos fibers; also determine the percentage of the total sample that is made up of asbestos fibers. TEM should use counting of all structures and structures > 5um. Please provide TEM photographs of typical fields. r im c i (Chirir, -feuo, p e ^ U u . - f o 2as i d j ^ i u . Please have Bill Longo contact John Dement prior to analysis. ((919) 286-1722x266.) _____________________________________ CHAIN OF CUSTODY The following 1 sample(s) were in my possession and were transferred to 'U , M A ^ _________ on / H O u l ^ T _____ , via the method checked: ______ Hand Delivered Federal Express or Overnight Carrier ______ U.S. Mail ______ Other (Describe) __________________ _ Signed: L u s iU k & U Printed Name: Courtney v. smith Sample ID # MVA 0685 D2917A Description sample of powder residue from welding rod abrasion test (also includes partially burned, comoletelv abraded rodj. I acknowledae the r e c e i n t of the above samples on behalf of