

Dynamic features of vibrating jaw crusher of feed grain
https://doi.org/10.26898/0370-8799-2024-5-11
Abstract
The vibration method of feed grain crusher can be realized in various designs of crushers, but preference should be given to dynamic machine schemes, as such systems contribute to energy saving and increase the reliability of the whole structure. The analysis of the totality of information on vibrating crushers developed in various branches of economy allowed formulating the main requirements to the dynamic systems of these machines. These include the following: providing vibration of points of the working bodies according to certain laws; implementation of self-synchronization of vibro-exciters (in the case of a pair of vibro-drive); ensuring the minimum amplitude of the load-bearing system of the crusher, on which the vibro-exciters are mounted; ensuring the maximum amplitude of the working body of the crusher; compactness of the vibro-drive; absence of parasitic vibrations. Due to these requirements, vibrating jaw crushers for feed grain deserve special attention. Crushers close in technical essence are successfully used in mining. In such crushers, various vibratory dynamic effects important for the technology are manifested. The purpose of this work is to increase the technical level of the vibrating crusher of feed grain on the basis of using the effects of self-synchronization of vibration exciters and intensification of discharging the crushed material. The mathematical model of dynamics of the vibrating jaw crusher of feed grain, taking into account its design features and interaction of working bodies with the technological medium, is obtained. It is found that of the two possible synchronization modes, the synchronous-synphase mode is stable. Analytical analysis has shown the technological operability of the dynamic scheme of the vibrating jaw crusher in this synchronization mode, while the dynamics of the crusher meets almost all other specified requirements.
About the Authors
N. M. IvanovRussian Federation
Nikolay M. Ivanov, Corresponding Member RAS, Doctor of Science in Engineering, Head Researcher
PO Box 463, Krasnoobsk, Novosibirsk Region, 630501;
Novosibirsk
A. M. Levin
Russian Federation
Alexei M. Levin, Candidate of Science in Engineering, Post-doctoral Student
PO Box 463, Krasnoobsk, Novosibirsk Region, 630501
I. Ya. Fedorenko
Russian Federation
Ivan Ya. Fedorenko, Doctor of Science in Engineering, Professor
Barnaul
References
1. Levin A.M. Experimental optimization of the vibratory grinding process of fodder grain. Vestnik Omskogo GAU = Vestnik of Omsk SAU, 2023, no. 1 (49), pp. 161–168. (In Russian). DOI: 10.48136/ 2222-0364_2023_1_161.
2. Fedorenko I.Ya., Levin A.M., Tabaev A.V. Morphological analysis of vibrational crushers of fodder grain. Vestnik Altaiskogo gosudarstvennogo agrarnogo universiteta = Bulletin of Altai State Agricultural University, 2020, no. 1 (183), pp. 156–163. (In Russian).
3. Bortnikov A.V., Samukov A.D. Vibration disintegration in ore-crushing at concentrators. Obogashchenie rud = Mineral processing Journal, 2018, no. 5, pp. 3–10. (In Russian).
4. Vaisberg L.A., Safronov A.N. Innovative crushing and grinding equipment of vibration action. Ekologiya i promyshlennost' Rossii = Ecology and Industry of Russia. 2019, vol. 23, no. 7, pp. 4–9. (In Russian).
5. Altshul G., Gouskov G., Panovko G., Shokhin A. Dynamics features of a vibrating machine with elastic element having exponential characteristic of resilient force. Cybernetics and Physics, 2021, vol. 10, is. 2, pp. 59–62. DOI: 10.35470/2226-4116-2021-10-2-59-62.
6. Kazakov S., Shishkin E. Vibrational dynamic system for the reduction of solid materials. Vibroengineering Procedia, 2019, vol. 25, pp. 65–69. DOI: 10.21595/vp.2019.20808.
7. Panovko G.Ya., Shokhin A.E. Dynamics of resonant vibration machines with self-synchronizing unbalance vibration exciters. Moscow, Izhevsk: Publishing house of the Institute of Computer Research, 2020, 168 p. (In Russian).
8. Azarov E.B. Comparative analysis of experimental research into the effect of lasting self-synchronization on a laboratory shaker with three and two vibration exciters. Izvestiya vuzov. Gornyi zhurnal = Minerals and Mining Engineering, 2022, no. 3, pp. 16–23. DOI: 10.21440/0536-1028-2022-3-16-23. (In Russian).
9. Krestnikovskii K.V., Panovko G.Ya., Shokhin A.E. On the problem of self-synchronization of inertial vibration exciters in the resonant frequency range. Mashinostroenie i inzhenernoe obrazovanie = Mechanical engineering and engineering education, 2021, no. 1–2 (66), pp. 54–61. (In Russian).
10. Afanaseva А., Gouskov G., Panovko G. Aeroelastic Vibrations of a Thin Ribbon in a Laminar Air Flow. Journal of Machinery Manufacture and Reliability, 2021, vol. 50, is. 5, pp. 419–429. DOI: 10.3103/S1052618821050022.
Review
For citations:
Ivanov N.M., Levin A.M., Fedorenko I.Ya. Dynamic features of vibrating jaw crusher of feed grain. Siberian Herald of Agricultural Science. 2024;54(5):105-112. (In Russ.) https://doi.org/10.26898/0370-8799-2024-5-11