Fedoskina О.V. Features of material movement in a vertical chamber of a vibratory jaw crusher when producing a fine-grained product

Geoteh. meh. 2023, 164, 71-78

https://doi.org/10.15407/geotm2023.164.071

 

FEATURES OF MATERIAL MOVEMENT IN A VERTICAL CHAMBER OF A VIBRATORY JAW CRUSHER WHEN PRODUCING A FINE-GRAINED PRODUCT

Fedoskina О.V.

Dnipro University of Technology

UDC 622.73

Language: English

Abstract. Currently, vibrating jaw crushers show a fairly high efficiency of the technological process. An extensive amount of research carried out at the Dnipro University of Technology made it possible for the first time to substantiate the possibility of using a vibratory jaw crusher with a vertically located chamber and a pendulum suspension of the jaws as an independent grinding unit for the production of powder materials.
The high-frequency impact nature of the load on the material implemented in vibrating jaw crushers made it possible to reduce the energy consumption and metal consumption of the plant, to increase the degree of crushing, which can reach the value i > 100. However, the specifics of the process of interaction of the material with the surface of the jaws in the vertical working chamber and the features of its unloading remain unknown.
The refinement of this process was carried out by an experimental method on a laboratory sample of a vibratory jaw crusher ВЩД-130 using high-speed photography. The crusher includes the main elements: a body mounted on elastic elements, crushing jaws, articulated with the body by means of axes. The side surfaces of the crushing chamber are limited by transparent glass walls rigidly connected to the crusher body. The vertical movement of the jaws was determined by the readings of the vernier. The starting material was pieces larger than 40 mm and large bulk material with a grain size of 10…15 mm.
An analysis of the nature of the movement of material throughout the crushing chamber showed the need to consider the chamber of a vibratory jaw crusher as two interconnected zones: crushing and grinding. Further studies were carried out for each zone.The productivity of the crushing zone is determined by a known method. It is necessary to create a rational profile of the working surface of the jaws on the basis of additional studies.
Studies of the grinding zone made it possible to obtain a physical picture of the interaction of the material with the jaws over the period. In the lowest position, at the initial moment of unloading, the speed of the finished product is practically zero. When determining the productivity of the grinding zone, it is advisable not to take into account the unloading of the material at the initial speed.
Keywords: vibratory jaw crusher crusher, crushing chamber, process, amplitude, zone, crushing

 REFERENCES:

1. Temchenko, H., and Bondаrchuk, O. (2016), “Evaluation of energy intensity of mining and processing production in difficult financial and economic conditions”, Economic Annals-XXI, no. 158(3–4(2)), pp. 52–56. https://doi.org/10.21003/ea.V158-12

2. Revnivtcev, V.I., Gaponov, G.V. and Zarogatskiy, L.P. (1988), Selectivnoe razrushenie materialov [Selective destruction of minerals], Nedra, Moscow.

3. Andres, K., and Haude, F. (2010), “Application of the Palla vibrating mill in ultra fine grinding circuits”, Journal of the Southern African Institute of Mining and Metallurgy, vol. 110, no. 3, pp.125–131.

4. Bardovsky, A., Gerasimova, A., and Aydunbekov, A. (2018), “The principles of the milling equipment improvement”, MATEC Web of Conferences, vol. 224, 30 October 2018, pp.01019. https://doi.org/10.1051/matecconf/201822401019

5. Fedoskin, V.A. (1982), “Dynamics and development of methods for calculating vibro-crushing machines of vibro-impact action”, Abstract of Ph.D. dissertation, Dynamics and strength of machines, devices and equipment, Georgian Polytechnic Institute, Tbilisi, Georgia.

6. Franchuk, V.P. (2010), “Vibration technology in small industries”, Geo-Technical Mechanics, no.85, pp. 290–296.

7. Mazur, M. (2019), “Examples of vibratory crushers applications in crushing technological lines”, New Trends in Production Engineering, vol. 2, pp. 28–36. https://doi.org/10.2478/ntpe-2019-0003

8. Wolny, S. (2013), “Dynamic behaviour of a vibrating jaw crusher for disintegration of hard materials”, Archives of metallurgy and materials, vol. 58, рр. 883–886. https://doi.org/10.2478/amm-2013-0092

9. Klushantsev, B.V., Kosarev, A.Y. and Muizemnek, Yu.A. (1991), Drobylky. Konstruktsyia, raschet, osobennostyekspluatatsyy [Crushers. Design, calculation, operation features], Mashynostroenye, Moscow, USSR.

10. Sidor, J. and Mazur, M. (2013), “The use of a vibratory crusher in processes of very fine crushing of raw materials and industrial waste ceramics”, Ceramic Materials, vol. 65(1), pp. 71–75.

11. Sidor, J. and Mazur, M. (2014), “Examination of crushing rock crystal in a vibratory jaw crusher”, Ceramic Materials, vol. 66(1), pp. 32–36.

12. Mishchuk, Ye. and Nazarenko, I. (2019), "Study of the dynamics of a double-acting vibrating jaw crusher", Mining, con-structional, road and melioration machines, vol. 94, pp. 5-15. https://doi.org/10.32347/gbdmm2019.94.0101

 13. Mishchuk, Ye., Nazarenko, I. and Mishchuk, D. (2021), "Definition of rational operating modes of a vibratory jaw crusher", Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu, vol. 4, pp. 56-62. https://doi.org/10.33271/nvngu/2021-4/056

14. Altshul, G.M., Gouskov, A.M., Panovko, G.Y. and Shokhin, A E (2020), "Interaction model of one jaw of a vibrating jaw crusher with the processed rock, taking into account the propertiesof the electric motor", IOP Conf. Series: Materials Science and Engineering, vol. 747, pp.3-8. https://doi.org/10.1088/1757-899X/747/1/012047

12. Mishchuk, Ye. and Nazarenko, I. (2019), “Study of the dynamics of a double-acting vibrating jaw crusher”, Mining, constructional, road and melioration machines, vol. 94, pp. 5–15. https://doi.org/10.32347/gbdmm2019.94.0101

13. Mishchuk, Ye., Nazarenko, I. and Mishchuk, D. (2021), “Definition of rational operating modes of a vibratory jaw crusher”, Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu, vol. 4, pp. 56–62. https://doi.org/10.33271/nvngu/2021-4/056

14. Altshul, G.M., Gouskov, A.M., Panovko, G.Y. and Shokhin, A E (2020), “Interaction model of one jaw of a vibrating jaw crusher with the processed rock, taking into account the properties of the electric motor”, IOP Conf. Series: Materials Science and Engineering, vol. 747, pp.3–8. https://doi.org/10.1088/1757-899X/747/1/012047

15. Vaysberg, L.A., Zarogatsky, L.P. and Turkin, V.Ya. (2004), Vibracionniedrobilki. Osnovirascheta, proectirovaniy I tehnologicheskogoprimeneniy. [Vibration crushers. Basics of calculation, design and technological application], Publishing house VSEGEI Press, St. Petersburg, Russia.


About author:

Fedoskina Olena Valeriivna, Candidate of Technical Sciences (Ph.D.), Associate Professor in Engineering and Generative Design Department, Dnipro University of Technology (NTU "DP"), Dnipro, Ukraine, This email address is being protected from spambots. You need JavaScript enabled to view it.