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Title of the article DEVELOPMENT OF SINTERED FRICTION MATERIAL FOR THE HYDROMECHANICAL TRANSMISSION TORQUE CONVERTER OF BELAZ DUMP TRUCKS
Authors

ILYUSHCHANKA Alexander Ph., Corresponding Member of the NAS of Belarus, D. Sc. in Eng., Prof., Director, State Scientific Institution “Powder Metallurgy Institute”, 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.

LIASHOK Andrei V., Ph. D. in Eng., Assoc. Prof., Senior Researcher1State Scientific Institution “Powder Metallurgy Institute”, 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.

ROGOVOY Alexander N., Head of the Laboratory, State Scientific Institution “Powder Metallurgy Institute”, 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.

REGINYA Vladimir V., Ph. D. in Eng., First Category Design Engineer of the Design Bureau of Hydromechanical Transmissions, OJSC “BELAZ” — Management Company of Holding “BELAZ-HOLDING”, Zhodino, 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 MECHANICAL ENGINEERING TECHNOLOGIES
Year 2024
Issue 1(66)
Pages 58–64
Type of article RAR
Index UDK 621.762
DOI https://doi.org/10.46864/1995-0470-2024-1-66-58-64
Abstract The torque converter is designed to transmit mechanical energy from the engine through a circulating fluid flow and automatically steplessly changes, within certain limits, the angular speed and transmitted torque depending on the load on the dump truck wheels. The torque converter makes it possible to achieve low speeds of the dump truck with increased traction on the drive wheels, ensures stable engine operation when the load changes, and also helps reduce dynamic loads in the dump truck transmission. The paper presents the results of a study of the effect of iron-chromium alloy powder ПХ30 (PKh30) on increasing the performance properties of sintered friction material for use in the torque converter locking clutch of a hydromechanical transmission. This is achieved due to the high physical and mechanical properties of PKh30, and the Cr23C6 layer formed during the sintering process with a thickness of up to 6 μm. It is established that the introduction of 10–40 vol.% of PKh30 powder helps to increase the friction coefficient from 0.042 to 0.075, with the maximum content being 28 %. Based on the data obtained, the composition of the composite friction material ФМ-15 (FM-15) was developed and patented. The manufactured friction discs, installed and operated in the hydromechanical transmission torque converter of the BELAZ-7555E mining dump truck with a load capacity of 60 tons, showed high performance properties. The developed composition of the friction material is also used in the friction clutches of the loading and hauling machine MoAZ-40751 with a load capacity of 16 tons and the loading and transport mine machine MoAZ-75851 with a load capacity of 50 tons with an electronic-hydraulic automatic control system. The study of tribological properties was carried out on a friction machine ИМ 58 (IM 58). The morphology of the friction surface was studied on a scanning electron microscope MIRA (Czech Republic) with an INCA 350 micro-X-ray spectral attachment from Oxford Instruments (United Kingdom). Phase composition was determined on an Ultima IV X-ray diffractometer of Rigaku Company (Japan) in CuKα radiation at an X-ray tube voltage of 40 kV, anode current of 40 mA.
Keywords hydromechanical transmission, friction material, friction coefficient, wear, torque converter, boundary lubrication
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Bibliography
  1. Reginya V.V. Kompleksnaya sistema diagnostirovaniya tekhnicheskogo sostoyaniya gidromekhanicheskoy peredachi s mekhatronnoy sistemoy upravleniya samosvalov BelAZ. Avtoref. diss. kand. tekhn. nauk [Comprehensive system for diagnosing the technical condition of a hydromechanical transmission with a mechatronic control system for BelAZ dump trucks. Extended abstract of Ph. D. thesis]. Minsk, 2018. 23 p. (in Russ.).
  2. Sharipov V.M., Dmitriev M.I., Klimova E.V. O velichine momenta treniya friktsionnogo stsepleniya pri razgone avtomobilya ili traktornogo agregata s mesta [The magnitude of frictional clutch moment during the start acceleration of automobile or tractor]. Izvestiya MGTU “MAMI”, 2017, vol. 11, no. 2, pp. 78–83. DOI: https://doi.org/10.17816/2074-0530-66930 (in Russ.).
  3. Tarasik V.P. Teoriya dvizheniya avtomobilya [Theory of car movement]. Saint Petersburg, BKhV-Peterburg Publ., 2006. 478 p. (in Russ.).
  4. Algin V.B., Poddubko S.N. Resursnaya mekhanika transmissiy mobilnykh mashin [Lifetime mechanics of mobile machine transmissions]. Minsk, Belorusskaya nauka Publ., 2019. 549 p. (in Russ.).
  5. Krasnevskiy L.G. Sovremennaya teoriya i tekhnika upravleniya gidromekhanicheskimi peredachami mobilnykh mashin [Modern theory and technique of control of hydromechanical transmissions of mobile machines]. Aktualnye voprosy mashinovedeniya, 2013, iss. 2, pp. 53–62 (in Russ.).
  6. Belabenko D.S. Tendentsii razvitiya ispolnitelnykh mekhanizmov i algoritmov upravleniya gidromekhanicheskimi peredachami [Trends in the development of actuators and control algorithms for hydromechanical transmissions]. Aktualnye voprosy mashinovedeniya, 2017, iss. 6, pp. 106–117 (in Russ.).
  7. Tarasik V.P. Friktsionnye mufty avtomobilnykh gidromekhanicheskikh peredach [Friction clutches of automotive hydromechanical gears]. Minsk, Nauka i tekhnika Publ., 1973. 320 p. (in Russ.).
  8. Reginya V.V. Gidromekhanicheskie peredachi samosvalov BELAZ: konstruktivnye osobennosti sistem avtomaticheskogo upravleniya i diagnostirovaniya [Hydromechanical transmissions of BELAZ dump trucks: design features of automatic control and diagnostic systems]. Gornyy zhurnal, 2013, no. 1, pp. 69–74 (in Russ.).
  9. Reginya V.V., Il'yushchenko A.F., Leshok A.V., Rogovoy A.N., Gryazev D.A., Petrov V.A. Issledovanie vedomykh diskov GMP BELAZ s novym maslom LZ_G-Base i friktsionnymi materialami FM-15 i MK-5 [Investigation of the driven disks of hydromechanical transmission BELAZ with the new LZ_GBase oil and the friction materials FM-15 and MK-5]. Izvestiya MGTU “MAMI”, 2018, vol. 12, no. 1, pp. 24–32. DOI: https://doi.org/10.17816/2074-0530-66834 (in Russ.).
  10. Il'yushchenko A.F., Leshok A.V., Shapovalova O.A. Issledovanie tribotekhnicheskikh svoystv friktsionnogo materiala MK-5 dlya gidromekhanicheskoy peredachi BelAZ, poluchennogo po tekhnologii svobodno nasypannogo sloya [Study of tribological behavior of metal-ceramic friction material MK-5 obtained by freely spread layer technique for hydromechanic transmissions]. Friction and wear, 2012, vol. 33, no. 5, pp. 500–507 (in Russ.).
  11. Gorbatenko N.N., et al. Diagnostirovanie gidromekhanicheskikh peredach [Diagnosis of hydromechanical transmissions]. Mogilev, Belorussko-Rossiyskiy universitet Publ., 2010. 511 p. (in Russ.).
  12. Pripisnov O.N., Shelekhov E.V., Rupasov S.I., Medvedev A.S. Mekhanizm fazoobrazovaniya i osobennosti mekhanokhimicheskogo sinteza karbida khroma [The mechanism of phase formation and peculiarities of mechanochemical synthesis of chromium carbide]. Powder metallurgy and functional coatings, 2014, no. 3, pp. 8–15. DOI: https://doi.org/10.17073/1997-308X-2014-3-8-15 (in Russ.).
  13. Leshok A.V., Ilyushchanka A.P., Dyachkova L.N., Pinchuk T.I. Tribotekhnicheskie svoystva poroshkovogo friktsionnogo materiala na osnove medi s dobavkoy poroshka zhelezo-khromistogo splava [Tribotechnical properties of a copper-based powder friction material with the addition of iron-chromium alloy powder]. Friction and wear, 2021, vol. 42, no. 1, pp. 5–12 (in Russ.).
  14. TU BY 100219793.431-2015. Izdeliya friktsionnye poroshkovye. Tekhnicheskie usloviya [Friction powder products. Technical conditions]. Minsk, Institut poroshkovoy metallurgii imeni akademika O.V. Romana Publ., Gosstandart Publ., 2015. 25 p. (in Russ.).
  15. Ilyushchanka A.Ph., Leshok A.V., Rogovoy A.N., Pinchuk T.I., Reginya V.V. Ispolzovanie vliyaniya poroshka zhelezo-khromistogo splava PKh-30 v sostave friktsionnogo materiala na osnove medi dlya vedomykh diskov gidromekhanicheskoy peredachi pogruzochno-dostavochnoy mashiny MOAZ-40751 [Using the effect of iron-chromium alloy powder PKh-30 as part of a copper-based friction material for driven discs of the hydromechanical transmission of the MOAZ-40751 loading and delivery machine]. Materialy 14 Mezhdunarodnoy nauchno-tekhnicheskoy konferentsii, posvyashchennoy 60-letiyu poroshkovoy metallurgii Belarusi “Novye materialy i tekhnologii: poroshkovaya metallurgiya, kompozitsionnyye materialy, zashchitnye pokrytiya, svarka” [Proc. 14th International scientific and technical conference dedicated to the 60th anniversary of the powder metallurgy of Belarus “New materials and technologies: powder metallurgy, composite materials, protective coatings, welding”]. Minsk, 2020, pp. 195–199 (in Russ.).