Document B3KjNxjqOqpY7Jn4G0M7yOGJ

DUST-PRODUCING POTErTIAL OF CONSTRUCTION MATERIALS PHASE II REPORT TO HEALTH AKD SAFETY CO.'niTxF.E NATIONAL IliSVLATIO: :tj:ufactltj:hs association J. LeRoy Balzcr, Ph.D. Bernard D. Tebbens, Sc.D. V, Clark Cooper, M. D. Division of Environmental Health Sciences School of Public Health University of California Berkeley \ t August 4, 1971 PLAINTIFFS I. EXHIBIT II 0tf'tote/ 001135 August 4, 1971 "DUST-PRODUCING POTENTIAL OF CONSTRUCTION MATERIALS, PHASE II" Partially as a result of last year's study, "Dust-Producing Potential of Construction Materials", a new insulation material not containing asbestos was commercially developed. This product. Unibest, is a substi tute for the asbestos-containing material, Unibestos. The sane protocol as proposed and followed in the last study was duplicated for the testing of Unibest. The following operations (described in greater detail below) were performed on each product by an insulation mechanic (journeyman asbestos worker). I. Simulation of pipe covering, and tear-out of heat stressed .pipe covering. , II. Power sawing of the products to simulate on-site fabrication of specific shapes of the material by a bandsaw; and the "scoring*of blocks. , III. Pounding with a simulated hammer to estimate the effects of force-fitting (not performed by the insulation mechanic). In each of these operations (except the tear-out and pounding), the insulation mechanic was permitted to set his own pace; the specific plan of operations was determined in consultation with him so that practices usual to the trade were followed. The insulation mechanic used a "Vhitecap" supplied-air respirator I throughout the tests. 001 Sampling and Analysis Air samples were taken by drawing air through Huclepore 0.8 ym wean pore size membrane filters. Hillipore 0.8 ym mean pore size membrane was used for the elutriator samples. Filters of 37 na diameter were used for the personal breathing zone samples and 47 na diameter filters for all other samples. During the simulated pipe covering, tear-out, and bandsawing, samples were taken at five locations within the test chamber: 1) in the middle of the chamber, vith the open-face filter holder 8 feet above the chamber floor level ("Roof" samples); 2) from a support projecting into the chamber approximately 1 foot from the vail opposite the work bench on which the covering was done, through an open-face filter holder about 6 feet above the floor ('Room" samples); 3) above the work bench (near the vail closest to the bench) with an open-face filter holder ("Bench" samples); 4) in the same location as the Bench samples but vith the air drawn through a Hexhlct / Horizontal Elutriator (Casella-Wilson) before passage through the in-line filter holder ("Elutriator" samples); 5) in the insulator's breathing zone vith disposable llillipore Field Monitors (open face) ("Personal" samples). Sample air flow rates vere: Roof, 1.26 cubic feet per minute (cfm); Room, 0.S4 cfm; Bench, 0.86 cfm; Elutriator, 50.0 liters per minute (1.7 cfm) Personal, 0.11 cfm. See Figures I and II of last year's report for these locations. During the scoring operation, only two sampling locations vere utilized i< * . (Room and Personal samples) as shown in Figures I and II of the last report. 001137 -3- The pounding operation was monitored with four samplers, one on the bench above the product being pounded ("Bench top") and three others approximately 5 feet distant froa the pounding site, 4 feet above floor level. One of these filter holders was directed upward ("Up"), another directed downward ("Down"), .and the other directed horizontally ("Horizontal"). Flow rates here were 0.86 cfa for the Mass, 0.G4 cfo for the Down, and 1.3 cfm for the remaining two. report. These locations are shown in Figures III and IV of the last Analysis of the collected samples was directed at obtaining two measure of the relative amount of dust production froa the products being tested. All filters (except selected 37 an Personal sample filters) were weighed before and after use, each such weighing proceeded by desiccation for two hours to stabilize weights. Froa this weight data, the graviaetric con centrations of total airborne dust were computed in milligrams per cubic meter (ng/m^) by dividing the milligrams' change in weight by the total cubic neters of air which had passed through the filter. This was the sole analysis applied to the "Roof", "Roon", "Bench", and "Elutriator" samples. The Personal sample filters were analyzed to determine the concentra tions of mineral fibers (selected ones were weighed). This analysis was by the standard method for the determination of asbestos fibers collected on membrane filters: a wedge of the weighed, exposed filter was cut from the filter and the wedge (about 1/8 of the total filter) placed on a standard microscope slide on which was placed a drop of a mounting medium which 'matched the index of refraction of the organic filter. The filter wedge 001138 `'j-:) / cSjJiy thus "cleared" was examined with phase contrast microscopy at 430X magnification, with the microscopic field of examination linitod to the 2 area bounded by a Porton eyepiece reticle (0.0061 mm per field). The mineral fibers seen in each field were recorded and placed into several r length and diameter categories. Specific Operations All operations were identical to those described in the previous report. Results (Pipe Covering) Tables 1 and 2 show the results of the air sampling for these operations, expressed as milligrams cf total particulate per cubic meter 3 of air (ng/m ), total nineral fibers per clllilitcr of air (f/nl), as compared to the Unibestos results of the previous study. Figure I presents *11 products used in the previous study as compared to the new Unibest (B,) for pipe covering operations. The tcar-out is graphed in Figure II. Results (Eandsav) The bandsaving results arc listed as total mineral fibers per/mlllillte In Table 3 and total particulate, milligrams per cubic meter, in Table 4. Figure III compares the results to the last study. Results (Scoring) Table 5 and Table 6 6hov the scoring results along with the comparisons . of the previous study, Figure IV. Results (Pounding) Table 7 gives the results from this experiment. i 'results with the previous study. Figure V compares OOllGS rTOTAL AIRBORNE DUST (C R AVIM ZTR IC ) CONCENTRATIONS FROM A LL P IP E COVERING OPERATIONS fig <Ho oc 5 _) u: C/5 O HcW/5 D--I JS yUo.- 03 rLO- /I ra V) HvO. :* ** =3 8 ce uo c o HV) PROCESS Hand S a w in g Mean STANDARD DEVIATION UNIBEST UNIBESTOS UNIBEST 0IS 1 .5 9 2 .8 9 2 .0 5 0 .7 _ 1 3 .5 ___--______ 1 _ 3 .2 3 .5 1 3 .0 6 .6 5 .6 IS 9*8 | i 1 r- *-( o A p p lic a tio n .n Mean STANDARD DEVIATION T c a ro u t 03 3 .9 83.26 1 1 .5 1 .8 19.16 0 .5 0 .8 3 .9 3 .1 O H ri O' 1 0 .5 8 .1 . 9.3 1 .0 2 .3 A .9 3 .0 j 8 '0 i ri -< C o 27.29 fOcA' <P f- f- s r". *e r"i 6*0 ] 3 cMc 17.7 11.2 6 .9 55.37 O.A 3 .3 5 .9 3.2 8.8 i 8 .5 fis - 0.28 A .8 0 .7 1 .8 3.96 2.7 3 .A 5.5 3.71 UHVJ) ut-4 5S /Hr m 001140 AIRBORNE MINERAL FIBERS CONCENTRATIONS* ' FROM ALL PIPE COVERING OPERATIONS TABLE 2 PPvOCESS PERSONAL UNIBEST UNIBESTOS MINERAL fibers ASBESTOS FIBERS ROOF UNIEEST UNIEESTOS MINERAL ASBESTOS FIBERS fibers ROOM UNIBEST MINERAL FIBERS UNIBESTOS ASBESTOS FIBERS sawing HE AN STANDARD DEVIATION'S APPLICATION MEAN STANDARD DEVIATION 2.44_ . 2.19 5.77 ' 3.5 2.0 1.4 1.1 1.4 1.3 0.17 . 193.80 0.43. 0.69 1.50 0.9 127.1 57.48 0.5 \ 56.9 113.9 . 51.6 0.7 0.9 0.6 0.8 t 42.1 0.2 7.5 0.71 0.85 0.63 0.73 0.11 0.1 0.6 0.95 0.6 0.4 94.5 57.5 / 32.1 7.1 TEAROUT 26.55 268.40 * -- *FAil 0011'1 7 Figure I lunges and Means for All Samples - Applications 00111:2' Figure II Ranges L HeArts For All Sartplcs - Taarout 100 Products 001143 -91 AIRBORNE MINERAL FIBERS CONCENTRATIONS* FROM BANDSAVUNG TABLE 3 UNIBEST MINERAL FIBERS 13.94 24.70 30.52 MEAN 23.05 STANDARD DEVIATION 8.41 PERSONAL UNIBESTOS ASBESTOS FIBERS 754.76 376.22 *F/ML 1 ( C01144 3 0- TOTAL AIRBORNE DUST (GRAVIMETRIC) * CONCENTRATIONS FROM BAHDSAVIKG TABLE 4 t ROOF UNIBEST UNIEESTOS 22.91 56.02 99.95 >EAH 59.63 103.90' STANDARD DEVIATION 38.65 67.50 ROOM BENCH ELUTR2AT0R UMIEEST UNIBESTHS UNIBEST UNIDF.ST05 UNIBEST unit 17.43 73.33 12.17 35.86 125.18 6.48 121.60 58.30 47.1? 105.83 203.4; 172.29 26.93 15.19 - 55.59 23.40 26.20 15.47 10.55 3 / 001145 11' Figure III Ranges and Means for All Samples - Bandsawing Products 001146 -12- AIRBORNE MINERAL FIBERS CONCENTRATIONS* FROM SCORING TABLE 5 ~ ,, # MEAN STANDARD DEVIATION UNIBEST MINERAL FIBERS 55.89 109.48 24.18 3.18 43.12 PERSONAL UHIBESTOS' ASBESTOS FIBERS * * 2629.74 444.84 *F/ML \I 001147 TOTAL AIRBORNE DUST (CRAVUIETRIC) * CONCENTRATIONS FROM SCORING TABLE 6* UNIBEST MEAN STANDARD | DEVIATION .288.16 403.43 345.80 81.51 *Mg/M3 ROOM ' UNIBESTOS 159.C3 151.96 I 001148 FtrxT* IV Ranges ani Menus for All Scn-plc:-- - Scoring Products 0011*9 Q -15- TOTAL AIRBORNE DUST (GRAVIMETRIC) * CONCENTRATIONS FROM POUNDING TABLE 7 BENCH TOP UP DOWN HORIZONTAL UNITEST UNIBCSTOS UNILEST UNIBESTOS 2.57 O.G7 ' \ . 3.38 4.20 2.83 t 3.65 / MEAN 3.27 2.87 5.74 3.96 3.57 -4.20 1.26 2.94 2.86 1.06 STANDARD DEVIATION 1.55 1.73 1.22 3.71 `hr/M3 \ OOllSO 16 Figure V Ranges & Means For All Semples - Founding . Products 1 001151 -17- Dlccusslon of Results It is clear from these results that Unibcr.t is a definite improvement over the previous product Unibestos, not only ir. that the asbestos fibers have been removed but also in the production of total dust from most installation processes. -The amount of dust left from the normal operation of handsawing and application is presented in Table 8. The diameter fiber differs in that the mineral fiber in the aerosol averages 4.2 Pm versus Unibescos at 1.7 pn. Mechanical operations using savs produced total gravimetric conccn3 trations of airborne particulate matter above the proposed TLV of 10 og/n for inert dusts. From analysis of the data, it would indicate that the high concentration would occur in the immediate area and settle out relatively quickly. Figure VI compares the mean values for all operations, milligrams per cubit meter (mg/m^), with the Tesults of the last tests. Overall, the total airborne dust concentration is similar to the c&lcium silicate products tested previously. However, the absence of asbestos fibers in Unibest results in s nuisance dust condition rather than an overt biological hazard, i.e., asbestos exposure. vI 001152 . -18- DEBRIS FROM PIPE COVERING OPERATIONS, IN OUNCES TABLE 8 MEAN UNIBEST 5.0 4.0 4.5 4.5 DEBRIS UNIBEST05 11.0 31.0 ll.P ______________________UA____ 1 001153 19FiRure VI Accumulated Ranges and Means for all samples (except scoring) / Mg/M Products 001154 Conclusions 1. General installation operations of Unibcst produce less total airborne particulate atter than Unibestos. 2. Comminution (echanical aethods) results in airborne concentration of particulates greater than the proposed nuisance TLV dust value, 10 mg/n 1 001155 ft. t. _/ 0* -IF/-: <>. mm." No. 236 >r '., < IV puZl 'U&S. ,1 4 /* \ ?* , * ,r> .r * .\ * : r* *# * V'*' * I A - . * V * .*\J > e-16-71 'if. 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