[1] Schneider, Yu. “Formation of surfaces with uniform micropatterns on precision machine and instruments parts”, Precision Engineering, 6(4), pp. 219 – 225, 1984. DOI: 10.1016/0141-6359(84)90007-2
[3] Tomanik, E., El Mansori, M., Souza, R. and Profito, F. “Effect of waviness and roughness on cylinder liner friction”, Tribology International 120, pp. 547–555, 2018. DOI: 10.1016/j.triboint.2018.01.012
[4] Gavrysh, A.P.; Kirichok, P.O.; Pidbereznyi, M.P. Strengthening of metal surfaces of details of cars and mechanisms, Kyiv, Naukova dumka, 1995, 174 p. (in Ukrainian).
[6] Schneider, Y. “Service Properties of Parts with Regular Microrelief”, 2nd ed. (revised and augmented), Leningrad: Mashinostroenie. 253 p., 1982. (in Russian)
[7] Kyrychok, P., Neskhoziyevskyi, A. “Research of influence of parameters of a microrelief on quality of processing of a detail and operational characteristics of the printing equipment”, Technological Complexes, 3-4, pp. 74 – 80, 2007. (in Ukrainian)
[9] Gandhi, R., Sebastian, D., Basu, S. et al. “Surfaces by vibration/modulation-assisted texturing for tribological applications”. Int J Adv Manuf Technol 85. pp. 909 – 920, 2016. DOI: /10.1007/s00170-015-7968-3
[10] Leshkenova, L. “Increasing the productivity of the processing process and improving the operational properties of the surfaces of holes by the method of surface plastic deformation with the formation of a regular microrelief”, Dissertation of Cand. of Sci. (Eng.), Saratov, Saratov State Technical University. 184 p., 2002.
[11] Revankar, G., Shetty, R., Rao, S., Gaitonde, V. “Analysis of surface roughness and hardness in ball burnishing of titanium alloy”. Measurement, 58. pp. 256 – 268, 2014. DOI: 10.1016/j.measurement.2014.08.043
[13] Aftanaziv, I., Kyrychok, P., Melnychuk, P. “Improving the reliability of machine parts by surface plastic deformation”, Zhytomyr, ZhTI Publishing. 516 p., 2001. (in Ukrainian)
[14] Pawlus, P., Reizer, R., Wieczorowski, M. “Reverse problem in surface texture analysis– one-process profile modeling on the basis of measured two-process profile after machining or wear,” Materials 12(24), pp. 4169, 2019. DOI:10.3390/ma12244169
[15] Nanbu, T. Ren, N. Yasuda, Y.et al., “Micro-textures in concentrated conformal-contact lubrication: effects of texture bottom shape and surface relative motion,” Tribol. Lett. 29, pp. 241-252, 2008. DOI:10.1007/s11249-008-9302-9
[16] Kurniawan, R., Kiswanto, G., Ko, T. “Surface roughness of two-frequency elliptical vibration texturing (TFEVT) method for micro-dimple pattern process”, International Journal of Machine Tools and Manufacture, 116, pp. 77 – 95, 2017. DOI: 10.1016/j.ijmachtools.2016.12.011
[17] Guo, P., Ehmann, K. “An analysis of the surface generation mechanics of the elliptical vibration texturing process”, International Journal of Machine Tools and Manufacture, 64, pp. 85 – 95, 2013. DOI: 10.1016/j.ijmachtools.2012.08.003
[18] Wos, S., Koszela, W., Pawlus, P. “Comparing tribological effects of various chevron-based surface textures under lubricated unidirectional sliding”, Tribology International 146, pp. 106205, 2020. DOI: 10.1016/j.triboint.2020.106205
[19] Nagit, G., Slatineanu, L., Dodun, O., Ripanu, M., Mihalache, A. “Surface layer microhardness and roughness after applying a vibroburnishing process”, Journal of Materials Research and Technology. 8(5), pp. 4333 – 4346, 2019. DOI:10.1016/j.jmrt.2019.07.044
[20] Schneider, Y., Lebedinskiy, G. “Research of influence of oil capacity of working surfaces of sleeves of cylinders of automobile engines on their operability” (in Russian), in Strengthening-Calibrating and Forming Methods of Processing of Details (Rostov-on Don), pp. 92 – 93. 1970.
[22] Slavov, S., Dimitrov, D., Iliev, I. “Variability of regular relief cells formed on complex functional surfaces by simultaneous five-axis ball burnishing,” UPB Scientific Bulletin, Series D: Mechanical Engineering 82 (3), pp. 195 – 206, 2020.
[23] Slavov, S., Iliev, I. “Design and FEM static analysis of an instrument for surface plastic deformation of non-planar functional surfaces of machine parts”, Fiability & Durability 1 (2), pp. 3 – 9, 2016.
[24] Dzyura, V. “Modeling of partially regular microreliefs formed on the end faces of rotation bodies by a vibration method”, UJMEMS 6 (1), pp. 30 – 38, 2020.
[25] Dzyura, V., Maruschak, P., Kozbur, H., Kryvyi, P., and Prentkovskis, O. “Determining optimal parameters of grooves of partially regular microrelief formed on end faces of rotary bodies”, Smart and Sustainable Manufacturing Systems 5(1), pp. 1 - 12, 2021. DOI:10.1520/SSMS20200057.
[26] Dzyura, V. “Determination of the area of triangular grooves of partially regular microrelief formed on the end surfaces of rotating bodies”, Herald of Khmelnitskyi National University, Technical Sciences 283 (2), pp. 62 – 67, 2020. (in Ukrainian)
[27] Bodzás, S. “Analysis of the effect of the addendum modification coefficient for contact surfaces of spur gear”, Strojnícky časopis - Journal of Mechanical Engineering 69 (1), pp. 5 – 16, 2019. DOI:10.2478/scjme-2019-0001
[28] Halama, R., Markopoulos, A., Šofer, M., Poruba, Z. and Matušek, P. “Cyclic plastic properties of class c steel emphasizing on ratcheting: testing and modelling”, Strojnícky časopis - Journal of Mechanical Engineering 65 (1), pp. 21 – 26, 2016. DOI:10.1515/scjme-2016-0002