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Technique for the Determination of the Critical Points under Acoustic Emission Tribological Tests

  • Mechanics of Materials: Strength, Lifetime, Safety
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Inorganic Materials Aims and scope

Abstract

The use of the acoustic emission technique for the determination of the critical points under tribological tests using standard friction machines is shown by citing a specific example. The distinctive feature of the proposed approach is the use of special techniques for the determination and presetting of the fracture load and the simulation of the predominant wear processes in a friction pair. This approach can also be used as a technique for the identification of the AE sources registered under the friction and wear of different friction units. It was shown that confocal laser microscopy can efficiently replace most of the well-known wear evaluation techniques.

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References

  1. Kragel’skii, I.V., Trenie i iznos (Friction and Wear), Moscow: Mashgiz, 1962.

    Google Scholar 

  2. Kragel’skii, I.V., Dobychin, M.N., and Kombalov, V.S., Osnovy raschetov na trenie i iznos (Basic Calculations for Friction and Wear), Moscow: Mashinostroenie, 1977.

    Google Scholar 

  3. Polzer, G. and Meissner, F., Grundlagen zu Reibung und Verschleiβ, Leipzig: Deutsch. Verlag Grundstoffind., 1983.

    Google Scholar 

  4. Sviridenok, A.I., Myshkin, N.K., Kalmykova, T.F., and Kholodilov, O.V., Akusticheskie i elektricheskie metody v tribotekhnike (Acoustic and Electrical Methods in the Triboengineering), Minsk: Nauka i Tekhnika, 1987.

    Google Scholar 

  5. Baranov, V.M., Kudryavtsev, E.M., Sarychev, G.A., and Shchavelin, V.M., Akusticheskaya emissiya pri trenii (Friction Acoustic Emission), Moscow: Energoatomizdat, 1998.

    Google Scholar 

  6. GOST (State Standard) 9490-75: Liquid Lubricating and Plastic Materials. Method of Test for Lubricating Properties on Four-Ball Machine, Moscow: Izd. Standartov, 2007.

  7. ASTM G133-05(2010): Standard Test Method for Linearly Reciprocating Ball-on-Flat Sliding Wear. Book of Standards the American Society for Testing and Materials, Version 03.02, West Conshohocken, PA: ASTM Int., 2010.

  8. ASTM G99-05(2010): Standard Test Method for Wear Testing with a Pin-on-Disk Apparatus. Book of Standards the American Society for Testing and Materials, Version 03.02, West Conshohocken, PA: ASTM Int., 2010.

  9. Rastegaev, I.A. and Merson, D.L., Express testing of lubricants on four-ball friction machine using the acoustic emission method, Izv. Samar. Nauch. Tsentra, Ross. Akad. Nauk, 2008, no. 8, pp. 101–105.

    Google Scholar 

  10. Chudinov, B.A., Polunin, V.I., Krishtal, M.M., et al., Tribological research complex of test equipment, Trenie. Iznos. Smazka, 1999, no. 3. http://tribo.ru/forreaders/archive/archive/1.html?m=4. Accessed August 5, 2015.

  11. TR TS 030/2012: Technical regulations of the Customs Union “On the requirements to lubricants, oils, and special fluids,” GARANT Document database. http://base. garant.ru/5425755. Accessed August 5, 2015.

  12. Zaslavskii, Yu.S. and Artem’eva, V.P., Novoe v tribologii smazochnykh materialov (Advances in Tribology of Lubricants), Moscow: Neft’ i Gaz, 2001.

    Google Scholar 

  13. Baranov, V.M., Gritsenko, A.I., Karasevich, A.M., et al., Akusticheskaya diagnostika i kontrol’ na predpriyatiyakh toplivno-energeticheskogo kompleksa (Acoustic Diagnostics and Control at the Enterprises of Fuel-Energy Complex), Moscow: Nauka, 1998.

    Google Scholar 

  14. Rastegaev, I., Merson, D., and Vinogradov, A., Enhancement of efficiency of tribological testing by using acoustic emission measurements, 12th Int. Conf. of the Slovenian Society for Non-Destructive Testing, Portoroz, 2013, pp. 597–603.

    Google Scholar 

  15. Rastegaev, I.A., Merson, D.L., Rastegaeva, I.I., Vinogradov, A.Yu., and Chugunov, A.V., Comparative spectral analysis of noise-like acoustic signals in monitoring and diagnostics of industrial facilities, Kontrol Diagn., 2012, no. 10, pp. 80–87.

    Google Scholar 

  16. Fadin, Yu.A., Bulatov, V.P., Kireenko, O.F., and Tulaev, V.I., RF Patent 2212648, 2003. URL: http://www1. fips.ru/wps/portal/Registers. Accessed August 5, 2015.

  17. Kozyrev, Yu.P. and Sedakova, E.B., RF Patent 2263891, Byull. Izobret., 2005, no. 31. URL: http://www1. fips.ru/wps/portal/Registers. Accessed August 5, 2015.

  18. Kholodilov, O.V., Ostrovskii, E.I., and Kalmykova, T.M., RF Patent 2051368, 1995. URL: http://www1. fips.ru/wps/portal/Registers. Accessed August 5, 2015.

  19. Bulatov, V.P., Polevaya, O.V., Sedakova, E.V., and Fadin, Yu. A., The temporal dependence of the friction coefficient, Pis’ma Zh. Tekh. Fiz., 1996, vol. 22, no. 19, pp. 1–5.

    CAS  Google Scholar 

  20. GOST (State Standard) 9378-93: Roughness Comparison Specimens. General Specifications, Moscow: Izd. Standartov, 1996.

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Correspondence to I. A. Rastegaev.

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Original Russian Text © I.A. Rastegaev, D.L. Merson, A.Yu. Vinogradov, A.V. Danyuk, 2016, published in Zavodskaya Laboratoriya, Diagnostika Materialov, 2016, Vol. 82, No. 3, pp. 60–67.

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Rastegaev, I.A., Merson, D.L., Vinogradov, A.Y. et al. Technique for the Determination of the Critical Points under Acoustic Emission Tribological Tests. Inorg Mater 53, 1506–1512 (2017). https://doi.org/10.1134/S0020168517150146

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  • DOI: https://doi.org/10.1134/S0020168517150146

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