Semi-quantitative Respiratory Health Risk Assessment of Exposure to Metalworking Fluids (Oil Mists) in an Automotive Industry
محورهای موضوعی :
Zahra Moradpour
1
,
Soleiman Ramezanifar
2
,
Elham Asgari Gandomani
3
,
Rezvan Zendehdel
4
1 - Student Research Committee, Department of Occupational Health Engineering and Safety, School of Public Health and Safety, Shahid Beheshti University of Medical Sciences, Tehran, Iran
2 - Student Research Committee, Department of Occupational Health Engineering and Safety, School of Public Health and Safety, Shahid Beheshti University of Medical Sciences, Tehran, Iran
3 - Student Research Committee, Department of Occupational Health Engineering and Safety, School of Public Health and Safety, Shahid Beheshti University of Medical Sciences, Tehran, Iran
4 - Department of Occupational Health Engineering and Safety, School of Public Health and Safety, Shahid Beheshti University of Medical Sciences, Tehran, Iran
تاریخ دریافت : 1400/12/08
تاریخ پذیرش : 1401/04/29
تاریخ انتشار : 1402/12/11
کلید واژه:
Automotive Industry,
Health risk assessment,
Metalworking fluid,
Oil mist,
چکیده مقاله :
Metalworking fluids are used in many industries, especially those with metalworking processes. Despite their widespread use, these compounds have harmful effects on human health. Therefore, this study aimed to assess the semi-quantitative health risks of oil mists in the automotive industry. In this study, ACGIH, IARC indexes, LD50, and the risk of corrosion were used to determine the hazard rate, with the biggest index serving as the hazard rate's base. The actual exposure level was used to compute the exposure rate. Sampling and determination of oil mists were performed according to NIOSH 5026 method and using a membrane filter (37-mm). All risk rates of oil mists were in the high-risk range (H). The hazard rate level for all oil mists was equal to 4. The exposure rate for all oil mists except one of them was equal to 4. Considering the health risks identified in this study, it can be concluded that lathe workers in the automotive industries have a high risk in terms of metalworking fluids exposure.
منابع و مأخذ:
Ozimina D., Kowalczyk J., Madej M., Nowakowski Ł., Kulczycki A., 2017. The impact of the type of cutting fluid on the turning process. Tribologia. 3(1), 119-126.
Shaikh M.B.N., Ali M., 2021. Turning of steels under various cooling and lubrication techniques: a review of literature, sustainability aspects, and future scope. Engineering Research Express. 3(4), 777-780.
Najiha M., Rahman M., Yusoff A., 2016. Environmental impacts and hazards associated with metal working fluids and recent advances in the sustainable systems: A review. Renewable and Sustainable Energy Reviews. 60, 1008-1031.
Verma D.K., Shaw D.S., Shaw M.L., Julian J.A., McCollin S.A., Tombe K.d., 2006. An evaluation of analytical methods, air sampling techniques, and airborne occupational exposure of metalworking fluids. Journal of Occupational and Environmental Hygiene. 3(2), 53-66.
Osayi A., Lawal S., Ndaliman M., Agboola J., 2021. Performance Evaluation of Rubber Seed Oil Based Cutting Fluid in Turning Mild Steel. Nigerian Journal of Technology. 40(4), 648-659.
Woskie S.R., Virji M.A., Hallock M., Smith T.J., Hammond S.K., 2003. Summary of the findings from the exposure assessments for metalworking fluid mortality and morbidity studies. Applied Occupational and Environmental Hygiene. 18(11), 855-864.
Naje J.M., Jasim H.B., Alfatlawy F.A., 2021. Study the effect of metal cutting fluids in operating machines on operator health and the environment. Periodicals of Engineering and Natural Sciences (PEN). 9(2), 649-656.
Schwarz M., Dado M., Hnilica R., Veverková D., 2015. Environmental and Health Aspects of Metalworking Fluid Use. Polish Journal of Environmental Studies. 24(1), 37-45.
Wang X., Zhou Y., Wang F., Jiang X., Yang Y., 2021. Exposure levels of oil mist particles under different ventilation strategies in industrial workshops. Building and Environment. 206(1), 1-19.
Wang Y., Murga A., Long Z., Yoo S.J., Ito K., 2021. Experimental study of oil mist characteristics generated from minimum quantity lubrication and flood cooling. Energy and Built Environment. 2(1), 45-55.
Colin R., Grzebyk M., Wild P., Hédelin G., Bourgkard È., 2018. Bladder cancer and occupational exposure to metalworking fluid mist: a counter-matched case–control study in French steel-producing factories. Occupational and Environmental Medicine. 75(5), 328-336.
Thornéus E., Graff P., Bryngelsson L., Nordenberg E., Ghafouri B., Johansson H., Fornander L., 2021. Occupational Exposure to Metalworking Fluid and the Effect on Health Symptoms—An Intervention Study. Journal of Occupational and Environmental Medicine. 63(10), e667.
Sauvain J.J., Suarez G., Hopf N.B., Batsungnoen K., Charriere N., Andre F., Levilly R., Wild P., 2021. Oxidative potential of aerosolized metalworking fluids in occupational settings. International Journal of Hygiene and Environmental Health. 235, 113775.
Fernando W., Karunathilake H., Gamage J., 2021. Strategies to reduce energy and metalworking fluid consumption for the sustainability of turning operation: A review. Cleaner Engineering and Technology. 100100.
Sheehan M.J., Hands D., 2007. Metalworking fluid mist—strategies to reduce exposure: a comparison of new and old transmission case transfer lines. Journal of Occupational and Environmental Hygiene. 4(4), 288-300.
Tustin A.W., Cooney R., Lamson G.E., Hodgson M.J., 2021. A cluster of hypersensitivity pneumonitis associated with exposure to metalworking fluids. American Journal of Industrial Medicine. 64(11), 915-923.
Singh J., Gill S.S., Dogra M., Singh R., 2021. A review on cutting fluids used in machining processes. Engineering Research Express. 3(1), 012002.
International Agency for Research on Cancer (IARC), 2021. Agents classified by the IARC monographs, http://monographs.iarc.fr/ENG/Classification/index.php.
Iwasaki M., Hirai K., Fukumori K., Higashi H., Inomata Y., Seto T., 2020. Characterization of submicron oil mist particles generated by metal machining processes. Aerosol and Air Quality Research. 20(6), 1469-1479.
Park S.S., Kang M.S., Hwang J., 2015. Oil mist collection and oil mist-to-gas conversion via dielectric barrier discharge at atmospheric pressure. Separation and Purification Technology. 151, 324-331.
Asgari M., Azari M., Zandehdel R., Khodakarim S., Rafieepour A., Tavakol E., Abbas Gohari F., Kamalifar S., 2017. Development of a New Method for Analysis of Oil Mists. Health Scope. 6(3), 1-6.
Hygienists A.C.o.G.I., Threshold limit values for chemical substances and physical agents and biological exposure indices.1995.
Huynh C.K., Herrera H., Parrat J., Wolf R., Perret V., 2009. Occupational exposure to mineral oil metalworking fluid (MWFs) mist: development of new methodologies for mist sampling and analysis. Results from an inter-laboratory comparison. Journal of Physics: Conference Series. 151(1), 1-17.
Li K., Aghazadeh F., Hatipkarasulu S., Ray T.G., 2003. Health risks from exposure to metal-working fluids in machining and grinding operations. International Journal of Occupational Safety and Ergonomics. 9(1), 75-95.
Safety N.I.o.O., Health, NIOSH Cincinnati, Ohio, 1994.
Manpower M., 2005. A semi-quantitative method to assess occupational exposure to harmful chemicals. Singapore. Available from: URL: https://www. wshc. sg/files/wshc/upload/cms/file/2014/A Semiquantitative Method to Assess Occupational Exposure to Harmful Che. pdf
Gilbert Y., Veillette M., Mériaux A., Lavoie J., Cormier Y., Duchaine C., 2010. Metalworking fluid-related aerosols in machining plants. Journal of Occupational and Environmental Hygiene. 7(5), 280-289.
Park D.U., Jin K.W., Koh D.H., Kim B.K., Kim K.S., Park D.Y., 2008. Association between use of synthetic metalworking fluid and risk of developing rhinitis‐related symptoms in an automotive ring manufacturing plant. Journal of Occupational Health. 50(2), 212-220.
Yari S., Asadi A. F., Varmazyar S., 2016. Assessment of semi-quantitative health risks of exposure to harmful chemical agents in the context of carcinogenesis in the latex glove manufacturing industry. Asian Pacific Journal of Cancer Prevention. 17(3), 205-211.
Yahyaei E., Majlesi B., 2020. Occupational Exposure and Risk Assessment of Formaldehyde in the Pathology Departments of Hospitals. Asian Pacific Journal of Cancer Prevention. 21(5), 1303.
Wu P.C., Li Y. Y., Lee C.C., Chiang C.M., Su H.J., 2003. Risk assessment of formaldehyde in typical office buildings in Taiwan. Indoor air. 13(4), 359-363.
Kamalifar S., Azari M.R., Rafieepour A., Asgari M., Zendehdel R., Soori H., Tavakol E., Rahmati A.R., Ghaziani M.N., 2019. Alternative Method for the Analysis of Water-Based Metalworking Fluids Using Fourier Transform Infra-Red Spectroscopy. Iranian Journal of Health, Safety and Environment. 6(3), 1323-1329.