Document KqbXNzprbdvGMNw3wXRVn6o6

FILE NAME Brakes BRK DATE 2007 DOC BRK196 DOCUMENT DESCRIPTION Journal Article - Heavy Equipment Maintenance Exposure Assessment Journal of Occupational and Environmental Hygiene 4 525 ISSN 1545-9624 print / 1545-9632 online Copyright '2007 JOEH LLC DOI 15459620701411109 15459620701411109 537 Heavy Equipment Maintenance Exposure Assessment Using a Activity Model to Estimate Surrogate Values for Replacement of Missing Data Fred W. Boelter John W. Spencer and Catherine E. Simmons,, Boelter Associates Inc. Park Ridge Illinois 2Environmental Profiles Inc. Baltimore Maryland , This study on four pieces of heavy construction equipment was conducted to determine the concentration of airborne asbestos fibers during frame maintenance and repair activities which included aggressive techniques that resulted in visible dust from work involving friction products and gaskets Despite execution of a carefully planned sampling strategy approximately 10 47 of the samples collected could not be analyzed due to overloading orfilter damage To include the overloaded samples in the data analysis surrogate values were estimated following a activity model Twelve term personal samples 2 short 30min personal samples and 31 term area samples were modeled Personal and area weighted average data , were analyzed both with and without the estimated surrogate values and compared A total of 444 samples were collected over 9 days Four experienced heavy equipment mechanics removed and replaced friction products and gaskets Samples were analyzed using NIOSH Method 7400 Phase Contrast Microscopy followed by NIOSH Method 7402 Transmission Electron Microscopy Sample data information including the surrogate values for the shift TWA personal sample results ranged from 0.002 to 0 064 asbestosflcc Personal short min sample results including the two surrogate values ranged from 0 038 to 0 561 asbestos flcc shift TWA area samples including the 31 surrogate values ranged from 0.005 to 0.039 asbestos flcc Area air sample results at the end of the project were similar to levels measured before the start of the project No fiber concentration buildup within the work area was indicated over the day study Allshift personal and area TWA sample results were below 0.1 flcc and shortterm min personal samples were below 1.0 flcc Statistical results of the sample data with and without the surrogate values were consistent Use of the activity model reduced the uncertainty associated with this data analysis and provided a consistent logical process for estimating surrogate values to replace missing data Keywords containing chrysotile exposure assessment friction products gaskets activity model e E. Address correspondence to Catherine Simmons Boelter As- sociates Inc. 1300 Higgins Road Suite 301. Park Ridge IL 60068- 5772 mail cximmons@boulterassociates.com cximmons@boulterassociates.com cximmons@boulterassociates.com INTRODUCTION A sbestos has been used in certain applications of engine gaskets and friction products in high- and lowspeed automobiles trucks buses light duty equipment and heavy construction equipment Workers involved in repair or replacement of gaskets and friction products used in heavy construction equipment are potentially exposed to asbestos fibers The authors anticipated and hypothesized that resulting airborne asbestos fiber levels would be below 0.1 cc 8hr weighted average TWA and 1.0 cc min shortterm exposure limit STEL The hypothesis was based on the previous work experience of the authors and results of published studies discussed herein Conducting an assessment for asbestos exposures on mcchanics performing maintenance activities on heavy equipment presents a number of challenges to sample collection and analysis The analytical methods used to determine the concentration of fibers are sensitive to the presence of other particles on the filters Activities such as welding cutting using torches and grinding may render the filter overloaded with particulate matter the result being that the sample cannot be analyzed This study experienced a percentage of samples that were affected by these activities and as a result 10 of the samples could not be analyzed To overcome problems associated with filter overloading and damage the authors chose to apply a activity model commonly used in historical exposure assessment to estimate surrogate values for replacement of the missing data 123 The study was conducted during June 2003 and performed in heavy equipment repair facility by independent mechanics with extensive experience working on heavy equipment The work spanned a period of 9 days and was conducted on four pieces of Caterpillar heavy equipment A D8 Dozer D8 a 12E Motor Grader 12E a 930 Wheel Loader 930 and a 955 Track Loader 955 Brakes chutches and engines determined likely to be original equipment with asbestos containing components were Journal of Occupational and Environmental Hygiene July 2007 525525 dismantled cleaned and reassembled The gaskets brake linings and clutch linings were removed and replaced METHODS Work Layout and Ventilation The repair facility was constructed of a steel frame and metal skin and was fitted with two large sectional steel overhead doors The interior was unfinished and the dimensions were 17.1 m wide by 18.3 m long with a roof that varied from 3.7 m at the side wall to 8.5 m at the apex Figure 1 shows the location of the equipment during the work and the location of the overhead doors The D8 was in Location A throughout the study Sequentially the 12E 930 and 955 were placed in Location B and worked on during the study Figure 1 shows the layout of the facility and the location of equipment The repair facility was not equipped with a mechanical ventilation system The study was conducted under routine conditions with doors being opened only for entry and exit of personnel The overhead doors were opened only to move equipment and supplies in and out of the repair facility or for a few minutes following work activities such as operating the diesel engines welding and grinding or other activities that generated dense smoke or fume A mounted fan was used by the mechanics at various times to provide air movement inside the repair facility Prior to and following work activities the effective ventila tion rate reported as the number of air changes per hour of the facility was determined by using carbon dioxide CO2 tracer gas The American Society for Testing and Materials ASTM Office N lets Location A me18.3 18.3 Bay , Bay 2 Location B [ Overhead Doors Ff LJ a l + meters eens oa FIGURE 1. equipment Layout of repair facility and location of heavy Method E 741-00 Standard Test Method for Determining Air Change in a Single Zone by Means of a Tracer Gas Dilution was followed as a guideline guideline SAMPLING STRATEGY AND ANALYTICAL METHODS he facility owners removed interfering construction equipment and cardboard boxes from the repair facility Ten background air samples were collected for approximately 145 min at 2 min on the day prior to the start of repair activities Five samples were collected inside the facility and five were collected outside the facility to establish background fiber concentrations Personal and area air samples were collected each day with sample pumps started prior to the initiation of work activities and were stopped at the end of the day after completion of work Consecutive term samples were collected on each mechanic and at each area sampling location Samples were combined into TWAS over the whole sampling period to achieve shift TWA concentrations The short personal monitoring periods were for 30 min and were collected during activities when the mechanics were directly impacting the containing gasket or friction material These samples were collected to reflect peak exposure concentrations from activities conducted over a short period of time To determine average room fiber concentrations in air a procedure based on Environmental Protection Agency EPA asbestos guidance documents was used The occupied volume of the repair facility was subdivided into 40.320 modules The volume of each module equaled 0.03 mOnly areas between the floor and a height of 3.7 m were included in the random generation of area sample locations as this is the zone where the mechanics worked Eight of the modules were selected using a random number generator A sample cassette was located in the center of the respective module for the duration of each day of testing Area saruples were collected and analyzed using the same methods as the personal samples All background personal and area saniples were collected and analyzed following National Institute for Occupational Safety and Health NIOSH Method 7400 for collection and analysis by PCM All air samples were collected at a rate of approximately 2 min Samples with results above the limit of detection LOD by phase contrast microscopy PCM were subsequently analyzed by NIOSH Method 7402 Transmission Electron Microscopy TEM to identify fiber type TEM analysis determines the fraction of asbestos fibers present on the PCM filters This fraction was then multiplied by the PCM fibers per cubic centimeter cc result in accordance with NIOSH Method 7402 to obtain a PCM equivalent PCME asbestos cc All samples above the PCM LOD in the study were subsequently analyzed by TEM For sample results below the LOD the PCM LOD value was used in the TWA calculation and statistical analyses 526 526 526 Journal of Occupational and Environmental Hygiene July 2007 Missinty Data * v Determine time period Total and tasks or activities performed Break down the individual tasks or activities along with the corresponding time for each separate one Task 1 Time 1 Task 2 Time 2 Task 3 Time 3 Review available results . for same tasks or similar activities Select sample result value representative of each task or activity and document the process used Perform TWA calculation to estimate a surrogate value for the missing data point The sum of time for all tasks or activities should equal Ttotal Is the surrogate value reasonable when compared to values of similar activities If not evaluate Combine surrogate value with other measurement to obtain the shift TWA estimate FIGURE 2. Process framework for the activity model used to determine an estimated surrogate value for missing data " Note This value may be based on an average mean maximum or some other value Although not used in the model for this paper commercial software for stochastic modeling is available to assist with selection of a representative value Journal of Occupational and Environmental Hygiene ' July 2007 527 For example if a sample was analyzed by PCM and resulted in < 0.045 cc a value of 0.045 cc was used as the value for PCM and PCME For samples analyzed by TEM and where the result after multiplying the PCM result by the TEM fraction was below the PCM LOD the PCM LOD was used as the value value in the TWA calculation and statistical analysis Surrogate values for missing overloaded and damaged filters samples were estimated by using a activity model This model is consistent with methods described by Leidel et 10 and Mulhausen and Damiano where professional judgment is used to make inferences about exposure concentrations and the use of estimated surrogates in place of missing data The process usedin this studyis consistent with the worker activity model described by Ramachandran and Vincent and Ramachandran which is used for retrospective exposure assessments Figure 2 describes the * step process that determined the estimated surrogate value to replace the missing sample data point Bulk Samples Bulk samples of friction and gasket materials and debris created during the brake and clutch removal process were collected and analyzed for asbestos content and mineral type by polarized light microscopy PLM in accordance with guidelines set forth in EPA Method for Determination of Asbestos in Bulk Building Materials Statistical Methods Descriptive statistical functions were performed to summarize personal and area data Industrial bygiene inferential statistics of the TWA shift personal sample TABLE 1. TWA PCME Personal and Area Samples Daily Statistics Personal TWA Samples Area Samples Day Data Set xt Mia Max Mean Std Dev a Min Max Mean 1 AFS 2 .0.002 0.041 0.024 0.028 0 1 APS 1 BFS 2 AFS 1 _ _ 0.007 3 0.002 0.033 0.016 3 0.005 0.007 0.006 0.017 0.001 3 0.004 0.006 0.005 8 0.006 0.008 0.006 8 0.005 0.006 0.006 2233 APS 2233 BFS 0 _ _ 3 0.005 0.007 0.006 _ 0.001 0 _ _ _ 8 0.005 0.006 0.006 2233 AFS 2 0.020 0.028 0.024 0.006 8 0.005 0.022 0.014 2233 APS 3 BFS 2 0.015 0.046 0.030 4 0.013 0.036 0.024 0.022 0.010 0 _ 8 0.005 0.022 0.014 4 AFS 4 APS 4 BFS 1 _ 0.005 2 0.008 0.009 0.008 3 0.005 0.007 0.006 _ 0.001 0.001 0 _ _ 8 0.013 0.018 0.014 8 0.007 0.007 0.007 5 AFS 5 APS 0 3 0.046 0.055 0.052 0.005 0 _ 4 0.03 0.04 0.036 BFS 6 AFS 6 APS 6 BFS 7 AFS 7 APS 7 BFS 8 AFS 8 APS 00 BFS 9 AFS 3 0.045 ... 0.011 1 _ 4 0.011 3 0.014 0 3 0.014 3 0.010 0 oT 3 0.010 4 0.008 0.064 0.012 ao 0.012 0.022 _ 0.022 0.017 0.017 0.019 0.053 * 0.011 0.011 0.011 0.017 0.017 0.012 _ 0.012 0.014 0.010 0.001 0.001 0.004 0.004 0.004 0.004 0.005 8 0.034 0.039 0.036 5 0.007 0.010 0.008 3 0.007 0.010 0.008 8 0.007 0.010 0.008 8 0.009 0.022 0.015 0_ 8 0.009 0.022 0.015 8 b.009 0.019 0.011 0 _ 8 0.009 0.019 0.011 8 0.008 0.017 0.011 9 APS a BFS 0 _ _ 4 0.008 0.019 0.014 --- 0.005 0 _ _ 8 0.008 0.017 0.011 Total AFS 0.002 0.041 0.014 0.009 0.005 0.022 0.011 Total APS 0.008 0.055 0.022 0.003 0.004 0.040 0.016 Total BFS 0.002 0.064 0.018 0.005 0.005 0.039 0.013 AFS =: TWA shift analyzed data > 390 min APS = TWA partial shift analyzed data 390 min BFS --- TWA analyzed plus modeled data Std Dev 0.001 0.001 0.000 _ 0.000 0.005 _ 0.005 0.002 0.000 0.004 0.001 0.001 0.001 0.001 0.004 . 0.004 0.004 0.004 0.003 0.003 0.002 0.001 0.002 528 Journal of Occupational and Environmental Hygiene July 2007 data and short min personal sample data were also determined RESULTS Ventilation The effective ventilation rate with all doors closed was 0.13 air changes per hour ACH and averaged 4.7 ACH with both overhead repair facility doors open Background Air Samples Ten samples were collected 5 inside outside but only the inside facility samples were analyzed Results ranged from 0.012-0.025 total fibers by PCM These samples were further analyzed by TEM and no asbestos fibers were detected PCME of 0.009 asbestos cc in any of the five samples Bulk Samples The removed and replaced brake materials from all four pieces of equipment contained from 15 to 95 chrysotile asbestos Bulk sample analysis for asbestos in brake debris collected from all four machines yielded either nondetectable or less than % chrysotile asbestos Removed and replaced gasket materials positive for asbestos ranged from % to 85 chrysotile Personal and Area Samples A total of 434 personal and area samples were collected during work activities and analyzed 192 area samples 101 long personal samples and 138 short samples seven approximately 10 of the 434 samples were overloaded with particulate matter and could not be analyzed Three samples were excluded from the data compilation and statistical analysis due to pump faults that resulted in sample times less than 30 min or sample time uncertainty Shift and Short Personal Samples shift monitoring periods ranged from 6.5 hr to 9.5 hr with over half of the samples in the hr time period shift sample collection ranged from one sample collected over a full shift to collection of five samples averaged to determine the shift TWA From the 101 personal samples a total of 30 shift averaged personal samples were expected For this study a minimum sampling time of 390 min defined a fullshift personal sample Twenty averaged personal samples met the shift criteria and are described as Data Set AFS full shift The remaining nine personal TWAs were less than 390 min due to one or more overloaded samples The partialshift samples are described as Data Set APS partial shift Sample filters that overloaded with particulate matter or were damaged resulted in inconclusive data which then resulted in TWA samples failing to meet the selected shift time criteria To avoid loss of the missing sample data points a activity model Figure 2 was used to estimate surrogate asbestos fibers values The estimated surrogate value for cach missing data point was then entered into the PCME TWA calculation The results of including the surrogate values into the PCME TWAs are described as Data Set BFS full shift Personal shift TWAS by PCM analysis ranged from 0.005 cc to 0.049 cc with an arithmetic average value of 0.027 cc Partial TWAs by PCM analysis ranged from 0.10 0.09 0.08 0.07 Fibers 0.06 0.05 Asbetos 0.04 0.03 0.02 0.01 0.00 * APS AFS APS BFS AFS APS APS APS AFS AFS BFS APS AFS 5 Day Day DayDay Day DaDyay Day Day Day Day Day Day Day Day Day Day Day 5 6 Day Day Day Day BFSAFS APS APS - BFS AFS APS BFS BFS AFS APS BFS BFS APS BFS Day Day Day Day Day AFS APS BFS AFS APS APS BFS Day Day FIGURE 3. TWA personal sample asbestos libers by day and data set Note The solid circle on the graph indicates the average value The line extending through the circle indicates the range of the data AFS indicates Data Set TWA data 390 minutes APS indicates Sample Data Set TWA partial data 390 minutes BFS indicates Data Set TWA shift data including surrogate modeled data Analysis by NIOSH 7400 followed by NIOSH 7402 Note The maximum value for Data Set BFS is different from AFS because one of the AFS samples included an OL sample that when replaced with the surrogate value the TWA was lower Journal of Occupational and Environmental Hygiene July 2007 529 530 TABLE II Daily TWA Personal Sample Results with Activity Descriptions Data Set BFS Sample Information . . Date Day 1 Day 1 Day 1 Day 2 Day 2 Day 2 Day 3 Day 3 Day 3 Day 3 Person Sampled Mechanic # Mechanic # Mechanic 4 Mechanic 2 Mechanic 3 Mechanic 4 Mechanic # Mechanic 2 Mechanic 3 Mechanic 4 Activity D8 - Cable control disassembly removed wheels and brake D8 - Removed and replaced right cable control brake 12 E- Removed and replaced the air filter exhaust and intake manifolds valve cover and - engine head D8 - Removed parts to access the track brakes Assisted with disconnection of the cable control unit from the body of the dozer 12E 12E removed and replaced rear brakes D8 - Removed and replaced left cable control brake disconnected cable control unit from body of D8 12E Removed and replaced rear brakes cleaned engine head and block replaced head gasket and engine head removed radiator connections and gaskets 12E -- Removed and replaced rear brakes cleaned engine head and block replaced head gasket and engine head removed radiator connections and gaskets ~ D8 --- Removed the left and right track brake bands replaced left brake band D8 - Removed and replaced clutch and cable puller linkage 12E - Machine fluids replaced oil filter crank case breather and air filter parts and gaskets and engine cover replaced 930 Removed and replaced the wheels four brake caliper Surrogate Estimated Value Time min 0 131 123 0 0 0 0 162 162 * o assemblies and brake pads Day 4 Mechanic 2 D8 -- Track band brake replacement and adjustment Assisted with the rernoval of clutch using 350 overhead hoist the master clutch Assisted with the removal of clutch using 223 Day Mechanic 3 D8 --- Removed parts 10 access , overhead hoist 4 Mechanic 4 955 -- Removed engine cowling exhaust manifold rocker art assembly valve cover engine 0 Day studs air intake manifold and air filter radiator hose connection water thermostat and the - engine head along with associated gaskets access to the rear brake bands Disassembled and removed the 64 Day 5 Mechanic # 955 -- Removed parts to gain steering clutch linkages and assisted Mechanic 4 5 Mechanic 3 D8 - Removed and replaced clutch drive and driven plate friction linings 155 DDaayy 5 Mechanic # 955 Removed gaskets from the intake manifold exhaust manifold valve covei radiator hose 279 pipe connection and the oil cooler pump Replaced ferrules seals gaskets and engine head 6 Mechanic # D8 - Assisted with replacement of clutch 955 -- Removed three left side brake band assemblies 0 Day Removed band brake D8 Removed and replaced clutch and cable puller linkage 0 Day 6 Mechanic 2 955 -- 0 Day 6 Mechanic # D8 - Reinstalled the clutch assembly and clutch linkaagire intake manifold exhaust manifold 0 Day 6 Mechanic 4 955 -- Reassembled with gaskets the valve assembly connection surfaces and air filter assemble thermostat oil cooler surface radiator pipe Total Sample Time min 490 536 494 509 409 509 405 511 512 504 517 520 493 422 493 499 336 438 574 576 Results PCME TWA N Asbestos Fibers } 0.002 4 0.033 3 0.007 2 0.005 2 0.007 0.005 3 0.028 3 0.036 3 0.013 3 0.020 2 0.007 3 0.008 2 0.005 5 0.045 5 0.052 5 0.064 a 0.011 4 0.012 5 0.012 5 0.011 Journal Day 7 Mechanic # 955 - Removal of left side brake bands replaced the oil cooler radiator pipe gaskets and 0 radiator fan and fan guard of Day 7 Mechanic # D8 - Reassembled the clutch linkage and installed the transmission inter assembly with its original gasket 955 -- Assisted mechanic # Ocupationl Day 7 Mechanic # D8 - Removed the pony engine exhaust pipe pony engine supply tube water manifold pipe exhaust and air intake manifold and cylinder heads Removed gaskets and cleaned engine head and flanged surfaces Day 8 Mechanic # 955 - Installed right- and side brake bands and steering linkages 547 and Day 8 Mechanic # 955 - Installed the brake bands on the right and left side Reinstalled brake and steering 540 linkages D - Assisted with installation of engine head . . Day & Mechanic 4 D8 - Cleaned the exhaust manifolds front and rear cylinder heads removed and 482 Envirometal replacedgaskets Day 9 Mechanic # 955 - Completed steering clutch and brake linkage installation and adjusted brakes 489 D8 - Assisted Mechanic # Day 9 Mechanic # 955 - Completed steering clutch and brake linkage installation adjusted biakes D8 Assisted 494 Hygien Mechanics # and 4 with engine assembly and replaced.exhaust replaced.exhaust stack Day 9 Mechanic # D8 --- Drained and replaced oil installed seats levers and steering linkages in cab 502 Day 9 Mechanic 4 D8 - Cleaned valve cover surfaces installed replacement valve cover gaskets Reinstalled fuel 0 496 lines exhaust and water manifold gaskets and air intake pipe Cleaned the pony July engine exhaust pipe flange and replaced gasket Removed and replaced the fuel filter and gaskets 20 7 The amount time that the activity model was used to estimate a surrogate value for inclusion in the TWA 6 The total amount of time this mechanic worked on Day 6 0.016 0.014 0.022 0.011 0.010 . 0.017 0.019 0.013 0.008 0.018 TABLE III Short Min Personal Sample Daily Statistics Day Data Set m Min Max 1 2 3 5 5 6 7 8 9 Total AST Total BST AST AST AST AST AST BST AST AST AST AST 4 0.044 6 0.044 13 0.044 0.043 18 0.043 20 0.043 23 0.043 30 0.043 29 0.044 9 0.045 0.043 0.038 0.046 0.045 0.561 0.045 0.413 0.413 0.099 0.170 0.180 0.045 0.561 0.561 Notes AST indicates analyzed data only BST indicates analyzed plus modeled data Minimum values were all less than the limit of detection for the sampling method 0.011 cc to 0.176 cc with an arithmetic average value of 0.053 cc The minimum PCME value result for data sets AFS and BFS was 0.002 asbestos cc and 0.008 asbestos cc for Data Set APS The maximum PCME values were 0.041 for Data Set AFS 0.055 for Data Set APS and 0.064 asbestos cc for Data Set BFS The means were similar with Data Set AFS at 0.014 asbestos cc Data Set APS at 0.022 asbestos cc and Data Set BFS at 0.018 asbestos cc Table I and Figure 3 present the daily statistics for personal PCME TWA samples and Data Sets AFS APS and BFS A comprehensive list of work activities and sample information for shift TWAS representing Data Set BFS values are presented in Table II One hundred and thirty short samples were collected Of those 136 samples were analyzed Two samples on Day 5 were overloaded with particulate matter and could not be analyzed The analyzed samples are designated as Data Set AST short term The activity model was used to estimate surrogate values for the two missing data points and the combination of these values and the analyzed samples are designated as Data Set BST All short samples were collected for 30 min except for one min sample Table III and Figure 4 present the sample data grouped and analyzed by day The range of results of the min short samples for Data Set AST by PCM analysis was less than the LOD < 0.043 cc to 0.561 cc The range of results for Data Sets AST and BST by PCME analysis were less than the detection limits of 0.043 and 0.038 asbestos cc to 0.561 asbestos cc for both PCME data sets Mean values were not calculated due to the high fraction of censored data Gasket and friction excursion limit samples were grouped and analyzed to determine exposure concentrations for the various activities Data were grouped to evaluate the results by a variable such as perceived aggressive activities including scraping hammering riveting abrasive cutting and cleaning surfaces using a die grinder or compressed air The PCM and PCME results of the sample data grouped by activity are presented in Table IV 1.00 0.80 0.60 Fibers Asbetos 0.40 0.40 + 0.00 AST Day 5AST Day FIGURE 4. Short personal sample results by day Note The solid diamond on the graph indicates the average value The line extending through the diamond indicates the range of the data AST indicates Data Set A BST indicates Data Set B. Sample Analysis by NIOSH 7400 followed by NIOSH 7402 e 532 Journal of Occupational and Environmental Hygiene July 2007 TABLE IV Short Personal Samples by PCM and TEM . Sample InformationA Activity Analysis by NIOSH 7400 Phase Contrast Microscopy PCM Analysis by NIOSH 7400 PCM and NIOSH 7402 Transmission Electron Microscopy TEM NC Min Max Avg Std Dev Min Max Avg Std Dev Friction Work Band brake removal ' Removal of rivets and friction lining from brake band or brake shoe Cutting band with abrasive disc Removal of disc brake assembly Brake replacement and adjustment Rivet replacement of friction lining to bands or shoes Drilling of brake lining Clutch removal replacement and adjustment D8 only Rivet removal from drive and driven 17 =4 2 5 28 4 1 28 2 plates D8 only Cleaning scraping compressed air 4 cleaning of drive and driven plates D8 only Rivet replacement of friction linings to 6 drive and driven plates D8 only Related Work Removal of exhaust and intake 13 manifold manifold gaskets Scraping cleaning of engine head 13 engine block and manifold surfaces Wiping cleaning parts 8 Use of compressed air to clean engine 8 parts Replacement of engine parts and gaskets 12 0.043 0.044 0.077 0.044 0.048 0.044 0.049 0.044 0.043 0.043 0.561 0.044 0.104 0.044 0.305 0.044 0.047 0.044 0.043 0.201 0.038 0.079 0.190 0.230 0.210 , 0.151 0.211 0.180 . 0.048 0.207 0.156 0.044 0.048 0.045 0.045 0.413 0.143 0.045 0.045 ' 199 0.199 0.065 0.064 0.045 0.074 0.050 0.010 0.000 0.043 = 0.044 0.058 0.044 0.045 0.044 0.362 0.000 0.012 0.001 0.049 0.044 0.043 0.043 0.561 0.044 0.045 0.044 0.305 0.044 0.044 0.044 0.050 0.043 0.099 0.038 0.048 0.028 0.150 0.184 0.167 0.026 0.150 0.211 0.170 0.056 0.044 0.207 0.127 0.001 0.044 0.045 0.044 0.125 0.054 0.054 0.045 0.413 0.116 ; 0.045 0.045 0.094 0.094 0.051 0.051 0.010 0.045 0.045 0.045 0.004 0.000 0.362 0.000 0.001 0.001 0.013 0.024 0.029 0.069 0.000 0.114 0.017 0.017 0.000 * All samples were collected for 30 min at approximately 2 mm except for one min sample during brake drilling B For all samples less than the PCM LOD the PCM LOD is the value used in statistical calculations Seventeen short samples included work under two activities and are included in the analyses for both Further inferential statistical analysis of personal shift term TWA Data Sets AFS and BFS and the short- terro min data set was conducted For the short 30- min data 96 of the 138 samples were less than the LOD Inclusion of data points less than the LOD censored data would bias the statistical results toward the low end To be conservative and avoid the bias associated with analyzing censored data only samples above the LOD were included in the analysis of the short min data By excluding the censored values from the short min data set analysis only the upper bound values of the inferential statistics are reported Each data set was determined to be lognormally distributed The geometric mean GM geometric standard deviation GSD percentile value X 95 upper tolerance limit 95 UTL 95 exceedance fraction point estimate and 95 upper confidence limit were calculated The results of these analyses are presented in Table V. Area Samples Seventy TWA area samples were calculated from the results of 192 area samples Of these 41 area sample results were shift TWA samples with the remainder composed of 31 partial TWA area samples Sample sets are designated the same as the shift personal samples with Data Set AFS representing shift TWA samples Data Set APS representing partial TWA samples and Data Set BFS which represented all of the data from the previous two data sets plus the estimated surrogate values for the missing data points The range of PCM sample results for Data Set AFS was 0.003 to 0.047 total cc with an arithmetic average value of 0.020 cc The range of PCM sample results for Data Set APS was 0.003 to 0.066 cc with an arithmetic average value of 0.022 cc The overall statistics for the shift PCME data sets AFS and BFS were similar with minimum values of 0.005 Journal of Occupational and Environmental Hygiene July 2007 533 TABLE V. Inferential Statistical Analysis Samples Shift Personal TWA PCME Samples Data Set AFS Occupational exposure limit OEL cc Number of samples N Geometric mean cc Geometric standard deviation cc 95 cc UTL 95 UCL of 95 cc Exceedance fraction point estimate % Exceedance fraction 95 UCL 0.1 N 21 0.011 1.98 0.035 0.057 0.07 1.14 Shift Personal TWA PCME Samples Data Set BFS 0.1 N = 30 0.013 2.17 0.047 0.074 0.45 2.50 AFSTWA AFSTWA AFSTWA shift analyzed data 390 min BBFS BBFS . TWA shift analyzed plus modeled data ' Analyzed data from Data Set AST above the LOD only Only upper bound statistics reported Short Min PCME Personal Samples 1 N = 48 0.261 0.359 0.03 0.23 and 0.005 asbestos cc maximum values of 0.022 and 0.039 asbestos cc and arithmetic average values of 0.011 and 0.013 asbestos cc for data sets AFS and BFS respectively Table I and Figure 5 present the PCME data by day Figure 5 shows that the arithmetic average asbestos cc air level by the end of the study was essentially the same as the beginning asbestos cc background level These results indicated no buildup of asbestos fibers in air from one day to the next All TWA samples were below an hr TWA of 0.1 cc All short min samples were 1 below cc DISCUSSION The The majority of the activities conducted during this study were according to the mechanics typical for the study vicing required However a few unusual practices were also monitored One unusual practice the cutting of the brake band resulted in the highest value for the short min samples 0.561 asbestos cc The brake band cutting took approximately 2.5 min and was necessary because the bolts holding the brake band on could not removed This activity 0.10 0.09 0.08 0.07 0.06 Fibers 0.05 Asbetos 0.04 0.03 0.02 0.01 0.00 Background Background Background 1- BFS APS BFS 22 333 4 BFS 5 5 BFS BFS 66 77 88 BFS BFS 8 8 9- 0 FIGURE 5. TWA area sample asbestos fibers by day and data set Note The solid square on the graph indicates the average value The line extending through the square indicates the range of the data AFS indicates Data Set TWA data 390 minutes APS indicates Data Set TWApartial shift data 390 minutes BFS indicates Data Set TWA shift data including surrogate modeled values Sample Analysis by NIOSH 7400 followed by NIOSH 7402 * 534 Journal of Occupational and Environmental Hygiene July 2007 Results PCM total cc PCME asbestos cc Work Activities Analyzed Values and Surrogate Values Personal Sample Information for Mechanic # on Day 5 Sample Time Duration Analyzed Surrogate shift min Value Value Value TWA Mechanic removed radiator fan conducted scraping and used a die grinder and abrasive disc on manifolds and valve cover surfaces Five short samples collected on this mechanic on this 7:42 to 8:46 64 OLA day included the same or similar activities described for this time period An average of the four short samples 0.413 0.270 0.080 0.046 and 0.077 asbestos cc was used as the surrogate value 0.172 asbestos cc Mechanic used a die grinder and scrapers on oil cooler surfaces and air intake pipe flange 8:46 to 9:18 33 OLA Four short samples collected on this mechanic on this day included the same or similar activities described for this time period An average of the four short samples 0.413 0.270 0.080 0.046 and 0.077 asbestos cc was used as the surrogate value 0.172 asbestos cc Mechanic used a chisel hammer and die grinder on water pump flange radiator head flange 9:19 to 10:07 48 0.26 0.16 exhaust manifold on engine head air intake on engine bead valve mechanism assembly broom cleaned the floor wiped down work table and used a solvent to clean and wipe engine head surface Mechanic used a die grinder and scrapers on the engine block surfaces Conducted parts inventory 10:07 to 11:48 101 0.019 0.016 Used a grinder on the equipment frame to allow clearance to install engine head Mechanic replaced head gasket assembled ferrules and seals installed head to engine block 11:48 14:50 182 OLA tightened engine head bolts with torque wrench and helped Mechanic # remove brake bands for 5 min No short samples were collected on this mechanic during this time period To determine the surrogate value we took the air sample result on Mechanic # 0.058 asbestos cc for the brake work and used this value for the 5 min Mechanic 4 assisted him Lunch break was included during this sample and was for 37 min There was no exposure during lunch For the remainder of the time 140 min a value of 0.016 asbestos fibers was the surrogate This surrogate value was based on the results of four samples collected on Mechanic # on Days & and 9 while he performed the same activities during reassembly of the D8 which ranged from 0.008 to 0.016 asbestos cc Using the weighted average TWA calculation for the above value the result is 0.014 asbestos cc for the 182 min Mechanic completed tightening engine head bolts with a torque wrench replaced valve mechanisms 14:50 to 16:01 71 0.043 0.040 and engine head gasket Once the surrogate values were determined for the three OL samples described above they were 499 averaged with the remainder of the air samples for this mechanic on this day The total work time was 499 min and the TWA result was 0.064 asbestos cc The activities for this mechanic on this day were similar to his activities on Days 7 and 8. The TWA results for those days were 0.022 and 0.017 asbestos cc Based on comparing the TWA results on Days 7 and 9 to the TWA for this mechanic on Day 4. surrogate values were likely biased on the high side Because the goal was to compare results with 0.1 cc as an br TWA the bias was reasonable without being unreasonably conservative 0.177 0.177 0.014 0.064 AOL indicates sample was overloaded with particulate matter and could not be analyzed 535 was also conducted a second time on another brake band on the D8 and the sample result was 0.049 asbestos cc Exposures with the highest numerical values occurred on Days 1 3 and 5 of the study Activities on Day 1 included removal of brake bands and removal and replacement of rivets and friction lining on the brake bands Day 3 activities focused on the brakes and clutch systems on the D8 end engine rebuild on the 12E and brake removal and replacement on the 930. Day 5 activities included rivet removal cleaning and replacement on the drive and driven plates removal and replacement of end engine containing gaskets Days 1 3 and 5 were also the days when 32 air samples approximately 70 of all the overloaded samples were overloaded and could not be analyzed To overcome the inability to include the overloaded samples and to reduce uncertainty associated with evaluation of the data a timeactivity model to estimate surrogate values for the missing data was applied There was also a large data set with multiple samples for each task or similar tasks As shown in Figure 2 the authors relied on the analyzed data to assist with determination of the surrogate value Also for most of the overloaded sample periods there were one or more short min samples collected on the same mechanic during the applicable time frame that were available for use in the model For each estimate made by following the model described in Figure 2 the authors chose conservative values in recognition that short samples with their higher limits of detection are likely biased high and are not necessarily good predictors of term exposures Therefore the estimated surrogate results are also likely biased toward higher , exposure values Because the authors were interested in comparing the results with the maximum likely TWAS it was determined that conservative but reasonable estimations would be prudent To determine whether each surrogate TWA value was reasonable the result was compared with the TWA result of other mechanics performing similar activities To illustrate the process Table VI presents the results of using the activity model to estimate values for three samples on Mechanic 4 on Day 5 of the project The pattern of results of TWA personal samples in Figure 3 is similar to the pattern of the results for TWA area samples in Figure 5. The similarity in patterns was expected and indicates that the area samples though much lower in concentration are reflective of the work activities conducted on each day of the study Results also indicate that the average value of the shortterm samples over the day study were consistent as shown in Figure 4 The PCME mean and range for each data set on each day and demonstrate the consistency of these values throughout the study However the authors would caution users of the timeactivity model for replacement of missing data that there may not always be this level of consistency for all data sets Two published studies provided extensive PCM total fiber data regarding airborne exposures during maintenance and brake lining replacement in automobiles and other types of vehicles Neither of the published studies included analysis to confirm fiber type in the air samples The PCM total fiber results of our study were within the exposure range of these previously published studies In comparison a number of published studies provided a smaller volume of data regarding exposures to asbestos while removing and replacing gaskets Although not all of the studies provided TEM analysis results some did provide hr TWAs The results of this study were consistent with the previously published studies where hr TWAS by PCM or fiber identification was included as part of sample analyses using NIOSH method 7402 CONCLUSIONS Repair Repair and maintenance of heavy construction equipment involving containing friction products and gaskets resulted in exposure concentrations below 0.1 cc as an hr TWA and below 1 cc as a min short sample Average asbestos cc air concentrations in the repair facility work environment by the end of the day study were essentially the same as background levels measured before the study indicating no buildup of asbestos fibers in air from one day to the next A activity model approach to estimate surrogate values for replacement of missing data is an option to consider for exposure assessments when the ability to resample activities is not possible ACKNOWLEDGMENTS The authors wish to thank Caterpillar Inc. for funding this study Caterpillar is a defendant in asbestos personal injury claims Caterpillar did not influence the exposure assessment protocols that were developed or conducted We also want to thank the team of professionals who assisted with the study and the professional and diligent heavy equipment mechanics of Hoerr Machinery for sharing their knowledge skill and experience REFERENCES 1. 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