676d443a11e11.pdf
DOI:
Mavjud emas
Abashkin, R. I., & Alekhin, A. V. (2022). Motor oil change in the process of operation in internal congnition motors. (In Russian). Science and Education, 5 (2), 257. https://cyberleninka. ru/article/n/izmenenie-motornogo-masla-v-protsesse-ekspluatatsii-v-dvigatelyah-vnutrennegosgoraniya
Agocs, A., Nagy, A. L., Tabakov, Z., Perger, J., Rohde-Brandenburger, J., Schandl, M., & Dörr, N. (2021). Comprehensive assessment of oil degradation patterns in petrol and diesel engines observed in a field test with passenger cars–Conventional oil analysis and fuel dilution. Tribology International, 161, 107079. https://doi.org/10.1016/j.triboint.2021.107079
Alimova, Z. X., Kholikova, N. A., Kholova, S. O., & Karimova, K. G. (2021). Influence of the antioxidant properties of lubricants on the wear of agricultural machinery parts. IOP Conference Series: Earth and Environmental Science, 868 (1), 012037. IOP Publ. http://dx.doi.org/10.1088/1755- 1315/868/1/012037
Alimova, Z., Makhamajanov, M. I., & Magdiev, K. (2022). The effect of changes in the viscosity parameters of engine oils on the operation of engine parts. Eurasian Journal of Academic Research, 2 (10), 151-154. https://www.researchgate.net/publication/366918869_CAUSES_OF_CHANGES_IN_ THE_VISCOSITY_PARAMETERS_OF_MOTOR_OILS_DURING_OPERATION
Baskov, V., Ignatov, A., & Polotnyanschikov, V. (2020). Assessing the influence of operating factors on the properties of engine oil and the environmental safety of internal combustion engine. Transportation Research Procedia, 50, 37-43. https://doi.org/10.1016/j.trpro.2020.10.005
Bekana, D., Antoniev, A., Zach, M., & Mareček, J. (2015). Monitoring of agricultural machines with used engine oil analysis. Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, 63 (1), 15-22. https://doi.org/10.11118/actaun201563010015
Hasannuddin, A. K., Wira, J. Y., Sarah, S., Wan Syaidatul Aqma, W. M. N., Abdul Hadi, A. R., Hirofumi, N., Aizam, S. A., Aiman, M. A. B., Watanabe, S., Ahmad, M. I., & Azrin, M. A. (2016). Performance, emissions and lubricant oil analysis of diesel engine running on emulsion fuel. Energy Conversion and Management, 117, 548-557. https://doi.org/10.1016/j. enconman.2016.03.057
Holland, T., Abdul-Munaim, A. M., Watson, D. G., & Sivakumar, P. (2019). Influence of sample mixing techniques on engine oil contamination analysis by infrared Spectroscopy. Lubricants, 7 (1), 4. https://doi.org/10.3390/lubricants7010004
Jakoby, B., Scherer, M., Buskies, M., & Eisenschmid, H. (2003). An automotive engine oil viscosity sensor. IEEE Sensors Journal, 3 (5), 562-568.
Karimov, A. A., & Kichkinaev, M. A. (2023). Additive for motor oils. (In Russian). Educational Research in Universal Sciences, 2 (3), 1021-1024.
Kim, Y., Kim, N. Y., Park, S. Y., Lee, D. K., & Lee, J. H. (2013). Classification and individualization of used engine oils using elemental composition and discriminant analysis. Forensic Science International, 230 (1-3), 58-67. https://doi.org/10.1016/j.forsciint.2013.01.013
Kolesnikov, K. A. (2024). An overview of modern engine oil additives and their effect on engine performance. Cifra. Mechanical Engineering, 2 (3). https://doi.org/10.60797/ENGIN.2024.3.5
Korneev, S. V., Jigadlo, A. P., Bakulina, V. D., & Pashukevich, S. V. (2023). Evaluation of the service life of engine oils contaminated with fuel during vehicle operation. AIP Conference Proceedings (vol. 2784 (1)). AIP Publ. https://doi.org/10.1063/5.0140203
Korneev, S. V., Yarmovich, Y. V., Saveliev, S. V., Poteryaev, I. K., Buravkin, R. V., & Machekhin, N. Y. (2018). The influence of the KAMAZ diesel engines design on changing engine oil performance. AIP Conference Proceedings (vol. 2007 (1)). AIP Publ. https://doi.org/10.1063/1.5051856
Kumar, S., Mukherjee, P. S., & Mishra, N. M. (2005). Online condition monitoring of engine oil. Industrial Lubrication and Tribology, 57 (6), 260–267. https://doi. org/10.1108/00368790510622362
Kumbár, V., & Dostál, P. (2013). Oil additive and its effect. Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, 61 (3), 691-697. https://doi.org/10.11118/ actaun201361030691
Landowski, B., & Baran, M. (2019). Analysis of selected results of engine oil tests. Proceedings of the MATEC Web of Conferences (vol. 302, p. 01010). EDP Sciences. https://doi.org/10.1051/ matecconf/201930201010
Longwic, R., & Sander, P. (2018). The course of combustion process under real conditions of work of a traction diesel engine supplied by mixtures of canola oil containing n-hexane. IOP Conference Series: Science and Engineering, 421 (4), 42050. IOP Publ. https://doi.org/10.1088/1757- 899X/421/4/042050
Lützenkirchen-Hecht, D., Müller, L., Hoffmann, L., & Wagner, R. (2014). Analysis of engine motor oils by X-ray absorption and X-ray fluorescence spectroscopies. X-Ray Spectrometry, 43 (4), 221-227. https://doi.org/10.1002/xrs.2543
Magaril, E., & Magaril, R. (2016). Improving the environmental and performance characteristics of vehicles by introducing the surfactant additive into gasoline. Environmental Science and Pollution Research, 23, 17049-17057. https://doi.org/10.1007/s11356-016-6900-1
Nagy, A. L., Knaup, J. C., & Zsoldos, I. (2019). Investigation of used engine oil lubricating performance through oil analysis and friction and wear measurements. Acta Technica Jaurinensis, 12 (3), 237-251. https://doi.org/10.14513/actatechjaur.v12.n3.495
Perić, S., Nedić, B., & Grkić, A. (2014). Applicative monitoring of vehicles engine oil. Tribology in Industry, 36 (3), 308. http://www.tribology.fink.rs/journals/2014/2014-3/10.pdf
Raposo, H., Farinha, J. T., Fonseca, I., & Ferreira, L. A. (2019). Condition monitoring with prediction based on diesel engine oil analysis: A case study for urban buses. Actuators, 8 (1), 14. MDPI. https://doi.org/10.3390/act8010014
Schumacher, L. G., Peterson, C. L., & Van Gerpen, J. (2005). Engine oil analysis of biodiesel-fueled engines. Applied Engineering in Agriculture, 21 (2), 153-158. https://doi. org/10.13031/2013.18146
Syundyukov, I. S., Ivanov, E. K., Skotnikova, M. A., Qian, J. D., Medvedeva, V. V., & Krylov, N. A. (2019). Tribotechnical diagnostics of an internal combustion engine according to the condition of the oil. Key Engineering Materials, 822, 649-655. https://doi.org/10.4028/www.scientific.net/ KEM.822.649
Zaharia, C., Niculescu, R., Năstase, M., Clenci, A., & Iorga-Simăn, V. (2022). Engine oil analysis to evaluate the degree of its wear during the period of operation of the vehicle. IOP Conference Series: Materials Science and Engineering, 1-1220 (1), 012037. IOP Publ. https://doi.org/10.1088/1757- 899X/1220/1/012037