Investigation of the magnetic separation performance of a low-intensity magnetic separator embedded with auxiliary permanent magnets

被引:9
|
作者
Wang, Feiwang [1 ]
Zhang, Shitao [1 ]
Zhao, Zhiqiang [2 ]
Gao, Likun [1 ]
Tong, Xiong [1 ]
Dai, Huixin [1 ]
机构
[1] Kunming Univ Sci & Technol, Fac Land Resource Engn, Kunming 650093, Yunnan, Peoples R China
[2] State Key Lab Mineral Proc, Beijing 102628, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Low-intensity magnetic separator; Main permanent magnets; Auxiliary permanent magnets; Magnetite; MATHEMATICAL-MODEL; CAPTURE;
D O I
10.1016/j.mineng.2022.107399
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Low-intensity magnetic separators (LIMSs) comprise one of the most widely employed magnetic separation equipment. It is worth studying how to reduce magnetic flux leakage and significantly improve magnetic induction. Typically, auxiliary permanent magnets (APMs) are embedded in the main permanent magnets (MPMs) to increase the magnetic induction. In this study, the effect of the matching relationship between the widths of the MPM and APM and the height of the APM on the magnetic field distribution and magnetic separation performance are investigated. The wider the width of the MPM is, the wider the area of the relatively high magnetic induction intensity. Therefore, increasing the width of the MPM can effectively capture farther magnetic particles, which can effectively improve the magnetic separation performance. In addition, when the size of the MPM is constant, although the height of the APM is increased, the magnetic induction is improved less significantly. The research findings indicate that the height of the APM is approximately two-thirds of that of the MPM, so a satisfactory magnetic field distribution and magnetic separation performance can be obtained. Furthermore, to verify whether APM-LIMSs have advantages, a conventional low-intensity magnetic separator (CON-LIMS) without MPMs was designed. The magnetic field distribution and the effect of important parameters (remnant flux density, drum/tank distance, feeding speed and particle size) on the separation recovery are systematically compared and investigated through detailed computational simulations corresponding to the operating conditions. All the comparison results indicate that embedding APMs in the gaps of MPMs significantly expands the area of relatively high magnetic induction, which can ensure that there is still a strong magnetic force in the area far from the surface of the drum, thereby significantly improving the separation performance. Therefore, APM-LIMSs can capture a wider range and finer particle size. Moreover, APM-LIMSs can select lowcost, ferrite, permanent magnets and set a higher feeding speed and a wider drum/tank distance, thereby significantly increasing the processing capacity while ensuring a high separation performance.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Performance assessment of an innovative precise low-intensity magnetic separator
    Wang, Feiwang
    Zhao, Zhiqiang
    Zhang, Song
    Dai, Huixin
    Tong, Xiong
    Zhang, Shitao
    MINERALS ENGINEERING, 2022, 187
  • [2] Design a new high intensity magnetic separator with permanent magnets for industrial applications
    Arab-Tehrani, Kambiz
    Colteu, Adrian
    Rasoanarivo, Ignace
    Michel-Sargos, Francois
    INTERNATIONAL JOURNAL OF APPLIED ELECTROMAGNETICS AND MECHANICS, 2010, 32 (04) : 237 - 248
  • [3] FACTORS AFFECTING LOW-INTENSITY WET MAGNETIC SEPARATION
    LANTTO, H
    ACTA POLYTECHNICA SCANDINAVICA-CHEMICAL TECHNOLOGY SERIES, 1977, (135): : 3 - &
  • [4] Magnetic separator with transversally magnetised disk permanent magnets
    Nedelcu, S
    Watson, JHP
    MINERALS ENGINEERING, 2002, 15 (05) : 355 - 359
  • [5] A new low-intensity magnetic separator which employs rotating magnetic fields to reduce particle entrapment
    Allen, NR
    van Moort, JC
    SIXTH MILL OPERATORS' CONFERENCE, 1997, 97 (03): : 171 - 175
  • [6] Superconducting discs as permanent magnets for magnetic separation
    Watson, JHP
    Younas, I
    MATERIALS SCIENCE AND ENGINEERING B-SOLID STATE MATERIALS FOR ADVANCED TECHNOLOGY, 1998, 53 (1-2): : 220 - 224
  • [7] Superconducting discs as permanent magnets for magnetic separation
    Watson, J.H.
    Younas, I.
    Materials science & engineering. B, Solid-state materials for advanced technology, 1998, B53 (1-2): : 220 - 224
  • [8] Research of the Magnetic Field Inside a Drum Separator With Permanent Magnets
    Dimova, Tatyana
    Aprahamian, Bohos
    Marinova, Mariya
    2019 16TH CONFERENCE ON ELECTRICAL MACHINES, DRIVES AND POWER SYSTEMS (ELMA), 2019,
  • [9] A finite element model to simulate magnetic field distribution and laboratory studies in wet low-intensity magnetic separator
    Karimi, P.
    Darban, A. Khodadadi
    Mansourpour, Z.
    JOURNAL OF MINING AND ENVIRONMENT, 2019, 10 (03): : 717 - 727
  • [10] Prediction of Separation Performance of Dry High Intensity Magnetic Separator for Processing of Para-Magnetic Minerals
    Tripathy S.K.
    Singh V.
    Suresh N.
    Journal of The Institution of Engineers (India): Series D, 2015, 96 (2) : 131 - 142