Document 99ZwdB4rXY6a2D5RQ087x7K6e

ad w ANALYSIS OF TALC BY RAY DIFFRACTION AND POLARIZED LIGHT MICROSCOPY Lucy B. McCrone Walter C. McCrone Associates Chicago Illinois 60616 Inc. Contract No. CDC 210-75-0063 U. S. DEPARTMENT OF HEALTH EDUCATION AND WELFARE Public Health Service Center for Disease Control National Institute for Occupational Safety and Health Cincinnati Ohio 45226 May 1977 0144772 JNJ 000062312 ERRATA line 5 should read expired Figure 1 caption add ... 2 actual size paragraph 5 last line insert .and enter the resulting 14 tabulation line 2 change 10.60 = 10.90 to . ae eared 10.60 - 10.90 ot 17 paragraph 2 line 3 should read -. 5 ... 23 paragraph 2 line 13 add ..three samples line 16 should read counting 34 2. line 2 insert a colon after sample 0144773 JNJ 000062313 The quartz peak at 26.65 is three times the intensity of the next strongest at 20.83 and is preferred except when muscovite mica is present The 26.65 26.65 quartz peak is usually distinguishable by step scanning from the muscovite peak at 26.85 and the biotite mica peak at 26.42 but not from the 25 Intensity muscovite peak at 26.66 When much muscovite is present as in Sample 125 the 20.83 peak is preferable Minimum levels of detection by step scanning found for standards in talc using the peaks discussed above are tremolite - 0.5 anthophyllite - 2.5 chrysotile - % and quartz -0.2 -0.2 Our tremolite standard is predominantly nonfibrous others have reported that fibrous tremolite gives about 1/4 to 1/3 the response at 8.38^ obtained from nonfibrous tremolite in talc Most of the samples in which we found tremolite contain a preponderance of the nonfibrous habit POLARIZED LIGHT MICROSCOPY We have applied two kinds of microscopical analysis in identifying components of talc samples First petrographic observations in plane polarized light mainly morphology and refractive indices and between crossed polars morphology birefringence type of extinction extinction angle and sometimes interference figures Second the use of dispersion staining to identify minerals Appendix C the analytical dispersion staining chart is specifically designed for talc samples Most of the above observations are made at 200X magnification using the 10X dispersion staining objective with a 20X ocular High power objectives are some- ~ times used to examine the smallest particles and fibers or for interference figures Our usual procedure is as follows Procedure 1. Analyze the ray line scan to identify the major components and define any questions to be answered by microscopy Lo 2. Mount representative samples about 0.1 mg each of the unmilled material in the Cargille refractive index liquids specified below Observe central stop dispersion staining colors in each liquid and relate them to the curves in Appendix 3 Check birefringence and extinction between crossed polars and refractive indices relative to the mounting medium Look for fibers by dispersion staining and between crossed polars and check whether particles are really fibers or plates on edge by making them tumble in the liquid to exhibit all views - tapping on the coverslip with a needle will make the particles tumble into a succession of random orientations Table 2 gives the refractive indices of most minerals of interest in talc samples * J. Scheiz private communication | 15 0144774 JNJ 000062314 Table 2. Refractive indices of minerals sought in tale samples Mineral Refractive Indices 25 a or w or chrysotile 1.544 1.552 1.555 quartz 1.544 1.553 : lizardite 1.545 - 1.558 ) antigorite ; 1.545 1.557 1.560 ' | talc 1.546 1.588 1.589 : chlorite 1.566 1.567 1.596 : tremolite 1.599 1.610 1.621 : anthophyllite 1.603 1.617 1.628 : actinolite 1.633 1.641 1.647 : forsterite 1.643 1.663 1.682 ' | calcite 1.653 1.486 : grunerite amosite 1,669 1.681 1.697 | dolomite 1.677 1.500 : magnesite 1.694 1.694 1.509 riebeckite crocidolite 1.698 1.703 1.708 16 0144775 JNJ 000062315 Minerals especially silicates but also the isomorphous series of carbonates calcite dolomite magnesite etc. vary in refractive index Table 2 and Appendix C show average indices for the minerals which might be found in talc Generally the dispersion staining curves for these minerals move parallel to themselves as the composition changes The birefringence values ( B and ew ew will generally remain nearly constant for a given mineral although the indices themselves may vary considerably Both morphology and optics are noted in order to identify the asbestiform minerals To be asbestiform requires that they be fibers as defined by NIOSH measuring < 5...min diameter 200 min length and have a length to width ratio of at least 1 Cargille high dispersion liquid D = 1.550 A representative sample mounted in this liquid will show characteristic 0 colors for any of the following tale quartz chrysotile lizardite antigorite and many fibers paper silk viscose rayon and human hair etc. The crystallographic data in Appendix C and morphological observations should ensure identification of most of these substances or allow the conclusion that any other substance showing colors in this liquid is not one of those listed Figure 2 Characterization of this extraneous substance will often be possible by referring to the Particle Atlas Cargille high dispersion liquid 25 = 1.585 This liquid is useful for distinguishing talc from chlorite Edge views of chlorite are magenta for the index perpendicular to the plate index parallel to the plate ON EDG EDE GE > Talc is magenta for the MAGENTA MAGENTA CHIORITE CHIORITE vi lp MAGENTA4 a MAGENTA4 - C = 7.8LC Cargille high dispersion liquid 25 = 1.605 a Chrysotile and all other substances giving dispersion staining colors in liquid 1.550 will be white or pale blue in 1.605 Figure 3 Talc is the only substance in this group that shows a gclose to the visible ca 700 nm All talc plates show both n's "Y ) close to 1.605 in the red hence the central stop shows a pale blue in all directions lying in the talc plate and white corresponding to the a direction Other minerals showing colors in n = 1.605 include tremolite chlorite and actinolite Figure 4 * McCrone W.C. J.G. Delly 1973. The Particle Atlas Edition Two Ann Arbor Science Publishers Ann Arbor Michigan 17 0144776 JNJ 000062316 Anthophyllite often shows colors similar to tremolite but exhibits parallel extinction on all views Tremolite shows parallel extinction for one view but oblique extinction of 10 to 21 for the a- Y view Cargille Liquid n = RF series Non minerals showing dispersion staining colors in n = 1.660 include actinolite forsterite hornblende calcite cummingtonite and dolomite Figure 5 Cargille Liquid n = 1.700 M series in Minerals to look for and magnesite My = 1.700 include cummingtonite grunerite crocidolite t LIST OF MINERALS . STANDARDS The following mineral, standards were used for microscopy and quantitative ray diffraction Vermont talc kindly supplied by Windsor Minerals anthophyllite Haddam Connecticut chrysotile Victory Mine Globe Gila County Arizona tremolite Fowler New York quartz synthetic single crystal In addition the minerals listed below were used for microscopy and qualitative ray diffraction lizardite Kennack Cove Cornwall England chlorite Calaveras County California prochlorite Chester Vermont anthophyllite Guffey Colorado . anthophyllite Cashiers North Carolina actinolite Lake Wenatchee Washington tremolite fibrous Dahl Creek Alaska ray line scans of all of the above are attached as Appendix B. 21 0144777 JNJ 000062317 | yrodkophy antigorite lizardite mica antigoriteantigorite lizardite 10-15 Riou tough Kegyest| 30-45 5 wlo>| 5% lang (HY (wer (sagy Ws) isr) 2a) Oystye} I GUILE CIM 77 30-45 fibers ( ay 5 30-45 35 fibers goybp| 38-50 1 -23<%9i0d S#-0 < OS-9 28-6 oz~ Ip~ IM 65-6 L@-5L 10-12 01-09 b&S-8| 9-69) .1.3 12-65 19-32 45 liber SE-0F| er-ce| | | | | || | S$ %zyonb ot slo SY <7 Lo tO i -15 svo> st0> StO>| SO 0.7 Le 33 ) sz0> Lo | |) | 3 7%DIL | - a_ (neq | >| | (you| (x "| yjomfos 59 fibers 7 | Wo 034 Th3ys7ubou] OF-GE 0.5 Wh KIM $t-02 09-08 _ OS 0.25 | -OF 75-87 COIM | | ' 035 5 Wer %ayipavzy St-01 I-08 BOF 3-4 te o%~ | 45-5 Stor $t-or magnific Sto! | ; ; avdsprg1% | : _ | 1%3yruop Wir wt> 2-3 1 W 20> [wae be I~ 20-25 < biotite 05 | w coal 69-76 69-76 te < imagnetic ws 40 $%shi | 7%BYUOly>| $1> O2-0/ a g~ 5 biotite 1.7 50-60 50-60 " wh9})2]09 10 I> I> > I> 90> o> | SY-5 zr @ tr sen g S $t = [WoTaypobyun 2.6 ( fibts fibr 0 101 fibers $s 3 S~ PN 4'$2|\S0 #tz\ec0 aN 167 $97 || || y too 200 971| 95 US || foo 400 |S00 0 9 Sb || 900 L00 e-nil| L6'9 || go 40 Ize PA 1)90 TAIAY?) SP $19 09 61 ZI 299 SV'9 || | \be0 ||060 1h0 260 Veto bFo S40 J&J-0144778 JNJ 000062318 - AP ENDIX AP ENDIX % PAGE L lizardite LIM calcite antigorite calcite dolomite feldspar lizardite magnesite zo (gy jf) ayoupD-| WS0-10 wy-$ 1-2 4-5 4-5 m Payis)St @ %5 tremolite quartz tremolite0.1-0.5M 93-95 | 0.5M 10 $6-6 0.5 ot-ce bf os. 8-S9 10-15 10-15 Sh-sz| b66~| mse 0.8 30-40 30-40 3 fibers 1s-49| L8H, | || | | | 1 SO go 15 -14 ~ be 9 M zu & pz. | os 1.1 z ( fibers 9% -15 | -5L | | | |) 2-3 6-80rthoclase ynomugy 1-2 M M 6-80rthoclase | | $4 | ; 2 35-50 oc].magnetite 053 ; Wtf 5 -84 LE 1 Os wi. M 175 61M 054 1 -60 On f~ wee 5L fs asypoyieg.9_ ; oe WET wsor ws0> 5-10 W <-% $-oo 8-5 or-g 11 85-92 85-92 Obes als ol- 02-0) | 7H Sh] - W2-s Wo-/ 5-6 1-2 Oin Og S~ 09 -1-2 || 7 so> I> 5-10 5-10 beso] || or gs b 2er 2 je | w^'o 12- K1magnetie $6 Wt 2-4 30 76-87 } SHISO on/|s0 1321980 |erlaso |2$4109 691690] 195190 77 26 IL 1989 9 9 HS thd ees su $1'9)) |e ON LS $4) || 13, 9X Ito \L70 |leb0 lato HOSO 250 \l0 0 LO lbso 190 |2901 590 J&J-0144779 JNJ 000062319 dolmite mica Size ' 06 5.85 yGsygde)ub IsdL 6.916.91 | dolomite 2 ayub riso y ypsubou fa (Sed y rbousi( agy 30-50 } 9 | isis} Zaye) 2)5) | KIM 4.888.64 U9 96-96 8b-L6 Lb -1 85-% KIM SM og-22 29-OL SELe OTHST ao S8-S8 1.5 90-92 90-92 <8-GL 0.5 graphite 8.64 | | |" | | { 261 261 SO. z0 gs Sf 50 2-3 | 9% #0 Li SR oot re 0.5 96-98 96-98 + an ore | || | ; 5.51 a am ; ayjag . yyy cae 07354.3 es pt OS ve 0743.94 QE -0 % 0743.94 34 XTWad 9.3 _ 50 minocline z+ ef 2-4 1.7 27-35 9.95| 44516.8 445445 078 445 1%Uiojop oe 5.3sti | auporupy") Ww W Ww W W 20> > S Weed 5-10 Ob~ geg OS Wofe wg | | : magnit i onsOs 2.4 85-95 85-95 zi Z/-0/ Or 6.41Buolyd| St} a 2-3 L |ws9219)09 > I | Wwoe-or 9-5 < os es ~ | | z-/ 2-/ +5 o- 2.5 65-80 70-85 4 78-83 8%pynrhydouc 14.6aquobryup 2-; | CrHELO rit a3 SBS ELE 169|| 88| #99 1921 ($$) || t.yes 1990 190 990 690 OLO ILO 2L0 po ob) S65) 9 9i| StF] 9'sil) '5 I?) ~ - ~ api) | || | $L0 std 20 LLO 8:0 bLO 060 180 290 90 130,$99 J&J-0144780 JNJ 000062320 1 calcite chlorite magnesite 5 Se O 2 1 8.7 1 11 (WY 1 ] 2 fst) 21.34 5 <b-SB) o-9| 1-2 sworg -IM So-o8 0b-L9 aos) 5 abe 22 | | | | 1 Le 97 2 6 #3 i te} 8yo SplagioclaseSplagioclase 2s? leo 1 11 fi | | | || [i ' 1-3 1-3 ," i! 110% wid ynagay : | | | 3.2|| as 6E Werte 39d 0964.130964.13 ie 0986.057% 0986.| 05 ay 0994.33 te 5 bd 1-2 61 | 1-3 | 1-3 de | ~ plagioclase Sp |. ge * 12 Ep 2-4 | 92-93D |Pf famanafey 0.2 logy gr 2 | S~ 9 - pet 3135331315 35 | ol | | 3135 31353135 Ui 3135 0.5 1-3 1-3 06 90-95 cen albite ) oe ach-2b || | 31353135 5-10L 24 1 5-10 es o- 19-8 + 3135 3135 31353135 3135 3135 3135pris 8 10-15 S = ob ley 8 _ ip 2 SI $0 9 _ 2,4 poo of Ol |} F608 5-10M cea ueso wes) | || 2.786-93 ose} be ar 2.1 fot yrpy Wd7 89-95 i. * 67-90 fe Po i i foe]. et @SUKTENUD | ' 1.2 tp ar 72-92Ce : ey tf yobs | ee2-4 | ope ae igs /1 80-94 td. G4 5-102 70-93 < 9 | | - - $01 Sot 99 J&J-0144781 JNJ 000062321 | 7 Size 6.07 6.07o dolomite dolomite dolomite+9) hte 002 jrubeu {> }) 6.676.67 | be | 4.7102.30 sy2g 98-8L g9-19 Bb 3-4 1b SL-$b lee b9-9 sez] | | || | | 109 ToL 8888 [ier wio> so +. | 3.52 3.52 3! yijorg|: 1-2 6 2 | OY 2 | | | 600 98 | |: a Yo mony 6.856.85 XTMNSd 1.5 1.5 | 11.2 4.34 4.34.434 = 3p 358 358 i | oo : 5-8 be Zz 1-242-3 | de = Oh < Is Oe, | el 10-15 |, ! :fo! log | st 4 42 1204238.85 $1 j re con 9 z~ a-$ 12 1235.69319/09 19 1Z* 2:0 | 1248.9 %9.15 BI-M | = ermayuobyup 2-1 Zeb | 109|}90! 9lgo/ 962} peelSats ~ eg L+|| g3 ell zee] seal erell 45 |L0! 60! sii 2 17 4/1 Sit 40-50 TEZ | SF gvor i .45 THE THE THE ; zp oa 10-15 || :| bo$1 0] - opaque particles vor ysDay 4 62 kaytosid| 82-84 0.75 ae | i | /9| ie ae 0.1M 45-5 45-5 6-5! < cool ze 97-98 0 se 45-75| magnetimagnetite 46-57 apollo5 0.9 Kimagnet si | KI 06 fs eee rs 5 -76 55-76 ee rc EPC 0.25 72-73 72-73 13.5 -2 Gro-tR 1-2 a) phlogopite gz 2-1 | oil [pesl| os Bi SS a98-08 |, 93-95 93-95 50 | 3.5 7-85 Z5 [ez] gl] soe os be) Sib 02! 121 22/ l|ezs +2/ Sz! 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