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Title of the article DAMAGE FEATURES OF TANKS OF FIRE TRUCKS AND STRENGTH ASSESSMENT OF THEIR WELDED JOINTS
Authors

KOVTUN Vadim A., D. Sc. in Eng., Prof., Professor of the Chair of Operational-Tactical Activity and Technical Equipment, University of Civil Protection of the Ministry of Emergency Situations of the Republic of Belarus, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

KOROTKEVICH Sergey G., Lecturer of the Chair of Industrial Safety, University of Civil Protection of the Ministry of Emergency Situations of the Republic of Belarus, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

PLESKACHEVSKY Yury M., Corresponding Member of the NAS of Belarus, D. Sc. in Eng., Prof., Head of the Department “Micro- and Nanotechnology”, Belarusian National Technical University, Minsk, Republic of Belarus, This email address is being protected from spambots. You need JavaScript enabled to view it.">This email address is being protected from spambots. You need JavaScript enabled to view it.

In the section DYNAMICS, DURABILITY OF VEHICLES AND STRUCTURES
Year 2021
Issue 1
Pages 15–20
Type of article RAR
Index UDK 614.846.63:681.586.7
DOI https://doi.org/10.46864/1995-0470-2020-1-54-15-20
Abstract The analysis of emergency rescue equipment usage on the territory of the Republic of Belarus made it possible to identify that the main technical unit involved into emergency situations is a fire truck tank. One of the main reasons for its repair and withdrawal from operational status is tank leakage that occurs due to peculiarities of equipment usage. As a result of a complex of studies, the recommendations for the modernization of a standard tank with 5 m3 volume of a fire truck were developed on the MAZ-5337 chassis. The stress state of a standard and modernized tank of a fire engine was investigated by the strain-gauge method under various operating modes of movement.
Keywords fire truck, tank, modernization, mechanical stress, resistance-strain sensor, safety factor, welded joint, stiffener
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Bibliography
  1. Bezborodko M.D. Pozharnaya tekhnika [Firefighting equipment]. Moscow, Akademiya GPS MChS Rossii Publ., 2015. 580 p. (in Russ.).
  2. Vysotskiy M.S., Pleskachevsky Yu.M., Shimanovskiy A.O. Dinamika avtomobilnykh i zheleznodorozhnykh tsistern [Dynamics of truck and rail tanks]. Minsk, Belavtotraktorostroenie Publ., 2006. 320 p. (in Russ.).
  3. Svedeniya o chrezvychaynykh situatsiyakh [Information about emergency situations]. Available at: https://mchs.gov.by/operativnaya-informatsiya/sutochnye-svodki-mchs/v-rb/333754/ (accessed 20 January 2021).
  4. Kovtun V.A., Korotkevich S.G., Zharanov V.A. Kompyuternoe modelirovanie i issledovanie napryazhenno-deformirovannogo sostoyaniya konstruktsiy tsistern pozharnykh avtomobiley [Computer simulation and research of the stress-strain state of fire tank truck structures]. Journal of civil protection, 2018, vol. 2, no. 1, pp. 81–90. DOI: https://doi.org/10.33408/2519-237X.2018.2-1.81 (in Russ.).
  5. Kovtun V.A., Korotkevich S.G., Pasovets V.N. Pozharnaya tsisterna [Fire tank]. Utility model RB, no. 11787, 2018 (in Russ.).
  6. Kovtun V.A., Korotkevich S.G. Tsisterna pozharnogo avtomobilya [Fire truck tank]. Utility model, no. u 20200103, 2020 (in Russ.).
  7. Kovtun V.A., Korotkevich S.G. Issledovanie vliyaniya geometricheskikh parametrov elementov konstruktsii tsisterny na ee prochnostnye kharakteristiki pri modernizatsii pozharnykh avtomobiley [Research of the geometric parameters influence of tank constructional elements on its strength characteristics at modernization of fire-fighting trucks]. Journal of civil protection, 2020, vol. 4, no. 3, pp. 316–327. DOI: https://doi.org/10.33408/2519-237X.2020.4-3.316 (in Russ.).
  8. Specialty instruments for strain gage measurement. Available at: https://micro-measurements.com/instruments (accessed 23 July 2019).
  9. Akhmedzhanov R.A., Cheredov A.I. Fizicheskie osnovy polucheniya informatsii [Physical basics of getting information]. Omsk, Omskogo gosudarstvennogo tekhnicheskogo universiteta Publ., 2008. 184 p. (in Russ.).
  10. Mekheda V.A. Tenzometricheskiy metod izmereniya deformatsiy [Strain gauge method for measuring strain]. Samara, Samarskogo gosudarstvennogo aerokosmicheskogo universiteta Publ., 2011. 56 p. (in Russ.).
  11. Kovtun V.A., Korotkevich S.G., Lodnya V.A. Osobennosti formirovaniya napryazhenno-deformirovannogo sostoyaniya uglovykh svarnykh soedineniy tsistern pri dvizhenii pozharnogo avtomobilya [Formation features of the stress-strain state of tank corner joints during the fire truck movement]. Vestnik GGTU imeni P.O. Sukhogo, 2020, no. 2, pp. 59–67. (in Russ.).
  12. Korotkevich S.G., Kovtun V.A. 3D kompyuternoe modelirovanie napryazhennogo sostoyaniya uglovykh svarnykh soedineniy stenok tsisterny pozharnogo avtomobilya pri dvizhenii [3D computer modeling of stress state in the fillet weld of tank’s walls of a fire truck at movement]. Machines and mechanisms reliability and durability, 2020, pp. 210–214 (in Russ.).