Журналы →  Eurasian Mining →  2022 →  №1 →  Назад

EQUIPMENT AND MATERIALS
Название Rolling resistance coefficient of belt conveyor rollers as function of operating conditions in mines
DOI 10.17580/em.2022.01.14
Автор Malakhov V. A., Tropako A. V., Dyachenko V. P.
Информация об авторе

NUST MISIS’ College of Mining, Moscow, Russia:

Malakhov V. A., Candidate of Engineering Sciences, Associate Professor, mr_mva@mail.ru
Dyachenko V. P., Candidate of Engineering Sciences, Associate Professor


New Quality Technologies Ltd., Moscow, Russia:

Tropako A. V., Candidate of Engineering Sciences, Chief Specialist

Реферат

The article describes the theoretical and experimental studies into the rolling resistance coefficient of rollers of belt conveyors in mines. The experimental testing based on the theory of similarity and dimensions has produced the relationships of the rolling resistance coefficient, the main structural parameters of bearings and the service properties of plastic lubricants at dynamically varied temperature and different belt speeds and roller loads. The reduction in the rolling resistance force applied to the rollers at the adjusted rolling resistance coefficient makes it possible to increase the operating energy efficiency of belt conveyors in mines due to the rational use of modern plastic lubricants.

Ключевые слова Belt conveyor, belt resistance calculation, belt conveyor roller, bearing assembly, types of plastic lubricants, operating temperature, roller load, belt speed
Библиографический список

1. Bryzhevich A. V., Hrydziushka D. V., Kalintsau Yu. V. Operation of rollers of belt conveyors in conditions of potash production. Mining mechanical engineering and machine-building. 2019. No. 1. pp. 35–41.
2. Galkin V. I. Expanding range of application of pipe conveyor belts through innovative design concepts. Gornyi Zhurnal. 2020. No. 5. pp. 52 –57. DOI: 10.17580/gzh.2020.05.09
3. Dyachenko V. P. Analysis and improvement of reliability of carrying rollers for belt conveyors in transportation of coarse loads in mines : Theses of Dissertation of Candidate of Engineering Sciences. Moscow, 1981. 159 p.
4. Sheshko E. E. Influence of hold-down on operability and basic parameters of high-angle pressure belt conveyor. Gornyi Zhurnal. 2019. No. 4. pp. 69–73. DOI: 10.17580/gzh.2019.04.15
5. Burcev S. V., Duhnov P. A. Monitoring and optimization of using greasing substance in compliance with conditions of working open pit equipments. Izvestija Tulskogo Gosudarstvennogo Universiteta. Nauki o zemle. 2017. No. 2. pp. 76–88.
6. Dmitriev V. G., Verzhanskiy A. P. Theory of belt conveyors. Moscow : Gornaya kniga, 2017. 592 p.
7. Malakhov V. A. Experimental study of the dependence of the resistance force to rotation of rollers of belt conveyors on the operating temperature conditions for modern greases. GIAB. 2018. No. 1. pp. 380–387.
8. Sheshko E. E., Pestrikov O. V. Justification of the required hold-down dependence on the length and angle of highangle pressure belt conveyor. Gornyi Zhurnal. 2021. No. 5. pp. 83–87. DOI: 10.17580/gzh.2021.05.10
9. Titov A. A. Design and analysis of roller with long-time effective lubrication for belt conveyors for the mining industry : Theses of Dissertation of Candidate of Engineering Sciences. Kiev, 1975. 209 p.
10. Mashkov E. A. Mathematical modeling and numerical design of nonisothermal viscous confluence flows in channels with elastic surface : Theses of Dissertation of Candidate of Engineering Sciences. Orel, 2017. 191 p.
11. Sergeev Yu. S., Sandalov V. M., Karpov G. E. Modeling of switched reluctance electric vibration drive. Bulletin of South Ural State University. Ser. Power Engineering. 2017. Vol. 17, No. 4. pp. 90–98.
12. Mišković Z. Z., Mitrović R. M., Stamenić Z. V. Analysis of grease contamination influence on the internal radial clearance of ball bearings by thermographic inspection. Thermal Science. 2016. Vol. 20, Iss. 1. pp. 255–265.
13. Sikorski J., Pawlowski W. Internal friction of ball bearings at very low temperatures. Strojniški vestnik—Journal of Mechanical Engineering. 2020. Vol. 66, Iss. 4. pp. 235–242
14. Kundu P., Chopra S., Lad B. K. Multiple failure behaviors identification and remaining useful life prediction of ball bearings. Journal of Intelligent Manufacturing. 2019. Vol. 30, Iss. 4. pp. 1795–1807.
15. Strozzi M., Rubini R., Cocconcelli M. Condition monitoring techniques of ball bearings in non-stationary conditions. Department of Sciences and Methods for Engineering, University of Modena and Reggio Emilia, Via Giovanni Amendola. Proceedings of the international conference on design tools and methods in industrial engineering. Italy : Springer, 2020. pp. 565–576.
16. Barkova N. A. Vibration diagnostics of rolling bearings. Laboratory testing guidance. Saint Petersburg : SPMI, 2010. 38 p.
17. Grabsky A. A. Development of theory of dynamic processes in the hydrostatic power plant of an open pit mine excavator : Theses of Dissertation of Doctor of Engineering Sciences. Moscow, 2016. 205 p.
18. Kondhalka G. E., Diwakar G. Effect of various defects in roller bearings and ball bearings on vibration. International Journal of Innovative Technology and Exploring Engineering. 2019. Vol. 8, Iss. 12. pp. 5137–5141.
19. Shahmeyster L. G. Belt conveyors: Theory and design. Moscow : Mashinostroenie, 1978. 392 p.
20. Tropakov A. V. Substantiation of computation method for rolling resistance force in rollers of belt conveyors depending on operating conditions in mines : Thesis of Dissertation of Candidate of Engineering Sciences. Moscow, 2019. 139 p.

Полный текст статьи Rolling resistance coefficient of belt conveyor rollers as function of operating conditions in mines
Назад