Математическая модель процесса усреднения свойств сыпучих материалов при их истечении
Работая с нашим сайтом, вы даете свое согласие на использование файлов cookie. Это необходимо для нормального функционирования сайта, показа целевой рекламы и анализа трафика. Статистика использования сайта отправляется в «Яндекс» и «Google»
Научный журнал Моделирование, оптимизация и информационные технологииThe scientific journal Modeling, Optimization and Information Technology
Online media
issn 2310-6018

Mathematical model of the process of averaging the properties of bulk materials at their expiration

Melekhina K.A.   Ananyev P.P.   Plotnikova A.V.   Shestak S.A.  

UDC 004.942
DOI: 10.26102/2310-6018/2020.29.2.024

  • Abstract
  • List of references
  • About authors

The goal is to predict the properties of bulk material flowing from the hopper device. The relevance of the study is due to the lack of input data for controlling the averaging process at processing plants. In this regard, this article is aimed at identifying the transfer function of the hopper device, and the delay time between the feed and the expiration of the material, which will allow you to predict the property of the bulk material, and therefore get the initial data for the averaging process, which is not always available. This article presents an analysis of the existing flow modes of bulk materials when they flow out of a hopper device with one or more holes, the equations describing the transfer function of the hopper device, as well as the time delay between the layer feed and its expiration, are derived. Based on these equations, a mathematical model for controlling the averaging process was constructed, which relates the relative fluctuations and frequency of change in the properties of the ore material entering the hopper. The compiled mathematical model provides reserves for reducing relative fluctuations in the factory. The materials of the article are of practical value for managing the process of averaging ore material at processing plants.

1. Plut M.N., Chikhachev A.V., Gubskaya O.A. System Management Process Model technical maintenance of communications and automated systems management. Collection of materials of the I International Scientific and Practical conferences. Under the general editorship of S.S. Chernov. 2017: 61-68.

2. Osipov O.Yu., Osipov Yu.M., Meshcheryakov R.V. Active cardan drive as element of a cyber-physical system. Proceedings of higher educational institutions. Instrumentation. 2016; 59 (11): 934-938.

3. Chueshev A., Melekhova O., Meshcheryakov R. Cloud Robotic Platform On Basis Of Fog Computing Approach. Lecture Notes in Computer Science. 2018;11097 (LNAI):34-43.

4. A.V. Varlamov Initial prerequisites for compiling a generalized mathematical models of the dynamic system "hopper device with bulk material - arch formation is a mechanism of destruction of arch formation ”. SamGUPS Bulletin. 2011; 2: 79-88

5. Xiufeng Zhang, Ganqiang Tao, Zhonghua Zhu. Laboratory study of the influence of dip and ore width on gravity flow during longitudinal sublevel caving. International Journal of Rock Mechanics and Mining Sciences. March 2018;103:179-185

6. Spider L. G., Dzhioeva A. K. Methodology for determining indicators of ore production under collapsed rocks. Vestnik MGTU im. G.I. Nosov. 2008; 2: 15-19.

7. Qunlei Zhang, Jinchao Yue, Chuang Liu, Chun Feng, Huamin Li. Study of automated topcoal caving in extra-thick coal seams using the continuum-discontinuum element method. International Journal of Rock Mechanics and Mining SciencesVolume. October 2019;122(104033)

8. Ermakova I.A. Changing the mechanism for the flow of bulk material from the hopper when using conical flow dividers. Bulletin of Kuzbass State Technical University. 2003; 3: 33-36.

9. Lyashenko A.S. Analytical determination of the shape of the generatrix of the conical hopper the highest throughput of bulk materials. Engineering bulletin Don. 2014; 2:35.

10. Ermakova I.A. A device for unloading bulk materials. Extradition decision RF patent for invention, application No. 2001126624/13 (028321) IPC 7 B65D 88/64, B65G 65/30. Stated 01.10.2001

11. A.V. Varlamov Design and dynamics of prevention and elimination mechanisms bridges in storage bins and release of bulk materials: monograph. - Samara: SNTs RAN, 2010.

12. V.V. Kulikov Ore release. - M .: Nedra, 1980.

13. Savenkov D.N. Bulk material silo. The decision to issue a patent of the Russian Federation for invention, application No. 2014153426/12 (155871) IPC 7 B65D 88/26, B65D 90/54. Declared December 29, 2014

14. Dan Li, Lin Wang, Qiang Wang, Guodong Liu, Muhammad Hassan. Simulations of dynamic properties of particles in horizontal rotating ellipsoidal drums. Applied Mathematical Modelling. September 2016;40:7708-7723.

Melekhina Kristina Andreevna

Email: k.melekhina@mail.ru

The Association Of Subjects Of Innovative Activity In The Mining Industry Innovative Mining Technologies

Moscow, Russian Federation

Ananyev Pavel Petrovich
Ph.D
Email: cigt@mail.ru

The Association Of Subjects Of Innovative Activity In The Mining Industry Innovative Mining Technologies

Moscow, Russian Federation

Plotnikova Anna Valerievna

Email: cigt@mail.ru

The Association Of Subjects Of Innovative Activity In The Mining Industry Innovative Mining Technologies

Moscow, Russian Federation

Shestak Sergey Anatolievich

Email: schestaksa@kolagmk.ru

Kola Mining And Metallurgical Company

Zapolyarny, Russian Federation

Keywords: mathematic modeling, transfer-function coefficient, averaging out of behavior, granular material, fluxion

For citation: Melekhina K.A. Ananyev P.P. Plotnikova A.V. Shestak S.A. Mathematical model of the process of averaging the properties of bulk materials at their expiration. Modeling, Optimization and Information Technology. 2020;8(2). Available from: https://moit.vivt.ru/wp-content/uploads/2020/05/MelekhinaSoavtors_2_20_1.pdf DOI: 10.26102/2310-6018/2020.29.2.024 (In Russ).

883

Full text in PDF