Obrabotka Metallov 2026 Vol. 28 No. 1

OBRABOTKAMETALLOV Vol. 28 No. 1 2026 215 EQUIPMENT. INSTRUMENTS лировок валков: монография. – М.: Теплотехник, 2013. – 114 с. – ISBN 978-5-85341-523-2. 4. Simulation of the thermal conditions of rolls in a wide-strip hot-rolling mill to determine their eff ective cooling conditions / E.A. Garber, M.V. Khlopotin, A.I. Traino, E.S. Popov, A.F. Savinykh // Russian Metallurgy (Metally). – 2009. – Vol. 2009 (3). – P. 208–219. – DOI: 10.1134/S0036029509030045. 5. Modelling surface thermal damage to mill rolls / R. Mercado-Solis, J. Talamantes-Silva, J. Beynon, M. Hernandes-Rodrigues // Wear. – 2007. – Vol. 263 (17–20). – P. 1560–1567. – DOI: 10.1016/j. wear.2006.12.062. 6. On the evolution of temperature and combined stress in a work roll under cyclic thermo-mechanical loadings during hot strip rolling and idling / K. Hu, Q. Shi, W. Han, F. Zhu, J. Chen // Materials. – 2020. – Vol. 13 (21). – P. 5054. – DOI: 10.3390/ma13215054. 7. Simulation of thermal stress and fatigue life prediction of high speed steel work roll during hot rolling considering the initial residual stress / K. Нu, F. Zhu, J. Chen, N.-A. Noda, W. Han, Y. Sano // Metals. – 2019. – Vol. 9 (9). – P. 966. – DOI: 10.3390/met9090966. 8. The infl uence of rolling mill process parameters on roll thermal fatigue / F. Weidlich, A.P. Braga, L.G. Silva Lima, G. Boccalini, R.M. Souza // International Journal of Advanced Manufacturing Technologies. – 2019. – Vol. 102. – P. 2159–2171. – DOI: 10.1007/ s00170-019-03293-1. 9. Analytical modeling of thermo-mechanically induced residual stresses of work rolls during hot rolling / M. Dünckelmeyer, C. Krempaszky, E. Werner, G. Hein, K. Schörkhuber // Steel Research International. – 2010. – Vol. 81. – P. 86–89. 10. Evolution of microstructure, temperature and stress in a high speed steel work roll during hot rolling experiment and modeling / G.Y. Deng, Q. Zhu, A.K. Tieu, H.T. Zhu, M. Reid, A.A. Saleh, L.H. Su, T.D. Ta, J. Zhang, C. Lu // Journal of Materials Processing Technology. – 2017. – Vol. 240. – P. 200–208. – DOI: 10.1007/s00170-019-03305-0. 11. Kiss I., Pinca Bretotean С., Josan А. Experimental research upon the durability in exploitation of the Adamite type rolls // IOP Conference Series: Materials Science and Engineering. – 2018. – Vol. 393 (1). – P. 012090. – DOI: 10.1088/1757-899X/393/1/012090. 12. Setiawan R., Siradj E., Iman F. Failure analysis of ICDP work roll of hot strip mill: case study of shell-core interface spalling // Jurnal Pendidikan Teknologi Kejuruan. – 2022. – Vol. 5 (1). – P. 28–34. – DOI: 10.24036/ jptk.v5i1.27023. 13. Experimental study of heat transfer in hot rolling / P. Kotrbacek, J. Horsky, M. Raudensky, M. Pohanka // Revue de Métallurgie. – 2006. – Vol. 103 (7). – P. 333–341. 14. Pinca-Bretotean C., Josan A., Kumar Sharma A. Infl uence of thermal stresses on the phenomenon of thermal fatigue of rolling cylinders // Journal of Physics: Conference Series. – 2023. – Vol. 2540 (1). – P. 012023. – DOI: 10.1088/1742-6596/2540/1/012023. 15. Савранский К.Н., Гарбер Э.А., Ламинцев В.Г. Пути экономии металла при производстве толстых листов. – М.: Металлургия, 1983. – 120 с. 16. Третьяков А.В., Гарбер Э.А., Позина Э.А. Расчет температурных напряжений в рабочих валках при холодной прокатке // Вестник машиностроения. – 1962. – № 7. – С. 22–25. 17. Третьяков А.В., Гарбер Э.А., Давлетбаев Г.Г. Расчет и исследование прокатных валков. – М.: Металлургия, 1976. – 256 с. 18. Pospelov I.D. Stiff ness modulus of stands in fi nishing group of continuous wide-strip hot rolling mill // Izvestiya. Ferrous Metallurgy. – 2025. – Vol. 68 (1). – P. 14–20. – DOI: 10.17073/0368-0797-2025-1-14-20. 19. Гарбер Э.А., Поспелов И.Д., Кожевникова И.А. Влияние фактического химического состава и упругих свойств полосы и валков на точность расчетов энергосиловых параметров широкополосных станов горячей прокатки // Производство проката. – 2011. – № 8. – С. 2–7. 20. Shalaevskii D.L. Investigation of thermal mode of hot-rolling mill working rolls in order to improve the accuracy of calculating the thermal profi le of their barrels’surface // Izvestiya. FerrousMetallurgy. – 2023. – Vol. 66 (3). – P. 283–289. – DOI: 10.17073/0368-07972023-3-283-289. 21. Eff ect of sliding and rolling friction on the energy-force parameters during hot rolling in four-high stands / E.A. Garber, I.A. Kozhevnikova, P.A. Tarasov, A.I. Traino // Russian Metallurgy (Metally). – 2007. – Vol. 2007 (6). – P. 484–491. – DOI: 10.1134/ S0036029507060080. 22. Simulation of contact stresses and forces during hot rolling of thin wide strips with allowance for a stick zone and elastic regions in the deformation zone / E.A. Garber, I.A. Kozhevnikova, P.A. Tarasov, A.A. Zavrazhnov, A.I. Traino // Russian Metallurgy (Metally). – 2007. – Vol. 2007 (2). – P. 47–56. – DOI: 10.1134/S003602950702005X. 23. Pospelov I.D., Nechaev R.R. Improving the methodology for calculating the fi nishing group power of a continuous wide-strip hot rolling mill // Steel in Translation. – 2024. – Vol. 54 (2). – P. 151–156. – DOI: 10.3103/S0967091224700396. 24. Stabilization of conditions in broad-strip mills to improve the transverse profi le of hot-rolled strip / E.A. Garber, M.V. Khlopotin, A.V. Kozhevnikov,

RkJQdWJsaXNoZXIy MTk0ODM1