Identifying patterns of aerosols formation during contact butt fusion welding

Authors

DOI:

https://doi.org/10.15587/1729-4061.2023.281011

Keywords:

contact welding, harmful substances, nano-sized particles, protective measures

Abstract

The object of research is the hygienic characteristics of harmful substances that pollute the air during contact butt welding with continuous and pulsating melting. The task to be solved is the lack of such information for devising appropriate measures to protect operators of contact welding of railroad rails. A description of the methods of researching the chemical composition of welding aerosols and gases, the dispersed composition of nano-sized fractions of aerosols and assessing their impact on the body of welders is given. It was established that contact butt welding by melting P65 rails is accompanied by the release of harmful substances into the air of the working zone in the form of aerosols at the nano range level, which are characterized by high biological activity. The research results showed that during continuous melting, the intensity of welding aerosol release is lower than during pulsating melting. It is shown that the toxicity of the aerosol during contact welding belongs to the moderately dangerous class. It was established that during contact butt welding by melting, an aerosol is formed, the composition of which contains nano-sized components of manganese and iron in concentrations that exceed the calculated approximately safe levels of human exposure. In the aerosol sample, particles ranging in size from 70.8 to 1071.8 nm were detected, and the average aerodynamic diameter of the aerosol particles was 295.2 nm. The studies have shown that melting butt welding is accompanied by the formation of such toxic gases as nitrogen dioxide and carbon monoxide in concentrations that exceed the maximum permissible. The results of a comprehensive hygienic assessment of aerosols during contact butt fusion welding provided comprehensive information about the level of harmful effects of these aerosols on the body of welders

Author Biographies

Oleg Levchenko, National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”

Doctor of Technical Sciences, Professor

Department of Labour Protection, Industrial and Civil Safety

Oleksandra Demetska, Shupyk National Healthcare University of Ukraine

PhD, Associate Professor

Department of Occupational Medicine, Psycophysiology and Medical Ecology

Yury Polukarov, National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”

PhD, Associate Professor

Department of Labour Protection, Industrial and Civil Safety

Olga Goncharova, E.O. Paton Electric Welding Institute of the National Academy of Sciences of Ukraine

PhD, Head of Laboratory

Laboratory of Problem of Labour Protection and Ecology in Welding Production

Department of Research of Physical and Chemical Processes in the Welding Arc

Olga Bezushko, E.O. Paton Electric Welding Institute of the National Academy of Sciences of Ukraine

PhD, Senior Researcher

Laboratory of Problem of Labour Protection and Ecology in Welding Production

Department of Research of Physical and Chemical Processes in the Welding Arc

Nataliia Prakhovnik, National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”

PhD, Associate Professor

Department of Labour Protection, Industrial and Civil Safety

Iryna Andrusyshyna, State Institution "Kundiiev Institute of Occupational Health of the National Academy of Medical Sciences of Ukraine"

Doctor of Biological Sciences, Senior Researcher

Laboratory of Medical and Biological Criteria Professional Influences and Occupational Hygiene in Agriculture and Industrial Production

References

  1. Kuchuk-Yatsenko, S. I. (2018). Technologies and equipment for flash-butt welding of rails: 60 years of continuous innovations. Automatic Welding, 12, 29–45. doi: https://doi.org/10.15407/as2018.12.03
  2. Gubenya, I. P., YAvdoshin, I. R., Stepanyuk, S. N., Demetskaya, A. V. (2014). K voprosu dispersnosti i morfologii chastits v svarochnykh aerozolyakh. Automatic Welding, 6-7, 159–162. Available at: http://dspace.nbuv.gov.ua/bitstream/handle/123456789/102164/34-Gubenya.pdf?sequence=1
  3. Weingrill, L., Krutzler, J., Enzinger, N. (2016). Temperature Field Evolution during Flash Butt Welding of Railway Rails. Materials Science Forum, 879, 2088–2093. doi: https://doi.org/10.4028/www.scientific.net/msf.879.2088
  4. Riccelli, M. G., Goldoni, M., Poli, D., Mozzoni, P., Cavallo, D., Corradi, M. (2020). Welding Fumes, a Risk Factor for Lung Diseases. International Journal of Environmental Research and Public Health, 17 (7), 2552. doi: https://doi.org/10.3390/ijerph17072552
  5. Valdiglesias, V. (2022). Cytotoxicity and Genotoxicity of Nanomaterials. Nanomaterials, 12 (4), 634. doi: https://doi.org/10.3390/nano12040634
  6. Kundiev, Yu. I., Korda, M. M., Kashuba, M. O., Demetska, O. V. (2015). Toksykolohiia aerozoliv. Ternopil: TDMU “Ukrmedknyha”, 256.
  7. Dueck, M. E., Rafiee, A., Mino, J., Nair, S. G., Kamravaei, S., Pei, L., Quémerais, B. (2021). Welding Fume Exposure and Health Risk Assessment in a Cohort of Apprentice Welders. Annals of Work Exposures and Health, 65 (7), 775–788. doi: https://doi.org/10.1093/annweh/wxab016
  8. Takahashi, J., Nakashima, H., Fujii, N. (2020). Fume particle size distribution and fume generation rate during arc welding of cast iron. Industrial Health, 58 (4), 325–334. doi: https://doi.org/10.2486/indhealth.2019-0161
  9. Gubala, V., Johnston, L. J., Krug, H. F., Moore, C. J., Ober, C. K., Schwenk, M., Vert, M. (2018). Engineered nanomaterials and human health: Part 2. Applications and nanotoxicology (IUPAC Technical Report). Pure and Applied Chemistry, 90 (8), 1325–1356. doi: https://doi.org/10.1515/pac-2017-0102
  10. Patel, R. J., Alexander, A., Puri, A., Chatterjee, B. (2021). Current Challenges and Future Needs for Nanotoxicity and Nanosafety Assessment. Nanotechnology in Medicine, 299–314. doi: https://doi.org/10.1002/9781119769897.ch14
  11. Cena, L. G., Chisholm, W. P., Keane, M. J., Chen, B. T. (2015). A Field Study on the Respiratory Deposition of the Nano-Sized Fraction of Mild and Stainless Steel Welding Fume Metals. Journal of Occupational and Environmental Hygiene, 12 (10), 721–728. doi: https://doi.org/10.1080/15459624.2015.1043055
  12. Zhang, H., Xu, C., Wang, H., Frank, A. L. (2016). Health effects of manganese exposures for welders in Qingdao City, China. International Journal of Occupational Medicine and Environmental Health. doi: https://doi.org/10.13075/ijomeh.1896.00694
  13. Osman, E. M. (2019). Environmental and Health Safety Considerations of Nanotechnology: Nano Safety. Biomedical Journal of Scientific & Technical Research, 19 (4). doi: https://doi.org/10.26717/bjstr.2019.19.003346
  14. Movchan, V. O., Salnikova, N. A., Andrusyshyna, I. M., Demetska, O. V. Leonenko, O. B. (2011). Pat. No. 72951 UA. Sposib vyznachennia nanochastynok v povitri robochoi zony. No. u201113770; declareted: 23.11.2011; published: 10.09.2012. Available at: https://uapatents.com/4-72951-sposib-viznachennya-nanochastinok-v-povitri-robocho-zoni.html
  15. Kundiev, Yu. I., Trakhtenberh, I. M., Yavorskyi, O. P., Demetska, O. L., Kashuba, M. O. (2016). Hihienichne normuvannia ta kontrol nanomaterialiv u vyrobnychomu seredovyshchi. Kyiv, 32.
  16. Hihienichni rehlamenty khimichnykh rechovyn u povitri robochoi zony (2020). N 741/35024 vid 03.08.2020 r.
  17. Levchenko, O. G. (2015). Svarochnye aerozoli i gazy: protsessy obrazovaniya, metody neytralizatsii i sredstva zaschity. Kyiv: Naukova dumka, 248.
  18. Levchenko, O., Polukarov, Y., Goncharova, O., Bezushko, O., Arlamov, O., Zemlyanska, O. (2022). Determining patterns in the generation of magnetic fields when using different contact welding techniques. Eastern-European Journal of Enterprise Technologies, 6 (10 (120)), 46–53. doi: https://doi.org/10.15587/1729-4061.2022.268699
Identifying patterns of aerosols formation during contact butt fusion welding

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Published

2023-06-30

How to Cite

Levchenko, O., Demetska, O., Polukarov, Y., Goncharova, O., Bezushko, O., Prakhovnik, N., & Andrusyshyna, I. (2023). Identifying patterns of aerosols formation during contact butt fusion welding. Eastern-European Journal of Enterprise Technologies, 3(10 (123), 30–38. https://doi.org/10.15587/1729-4061.2023.281011