Magnetic collection of grinding ball fragments from SAG and ball mill circuits

被引:0
|
作者
Norrgran, DA [1 ]
Mankosa, MJ [1 ]
机构
[1] Eriez Mfg Co, Erie, PA 16514 USA
关键词
D O I
暂无
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Grinding ball fragments discharging from SAG mills and ball mills causes extreme wear to downstream processing equipment. These bail fragments, recirculating in a milling circuit, will cause excessive wear to sumps, pumps, hydrocyclones, and interconnecting piping. A magnetic separation system to remove grinding ball fragments from the mill discharge has been developed and successfully applied in the milling circuit. This magnetic separation system - termed Trommel Magnet - was first applied at the Escondida copper concentrator in Chile. The Trommel Magnet consists of an are of permanent magnets mounted at the discharge end of the trommel screen. The magnetic are attracts the ball fragments and removes them from the process stream. This retrofitted magnetic separation system removed 126 metric tons of ball fragments from the circulating load of a single ball mill in the initial 24 hour period. The mill has since stabilized and the magnetic separator is currently removing 7 metric tons per day of ball fragments. The retrofit of the Trommel Magnet has: 1. Extended the pump life and the hydrocyclone life approximately 300 percent. 2. Provided a 5 percent increase in the throughput of the mills by removing grinding ball fragments that contribute very little to the grinding process. Variations of the Trommel Magnet have also been developed for removing grinding ball fragments directly from the mill discharge without the use of a trommel screen. In each case, permanent magnets are used to collect the ball fragments from the mill. discharge stream prior to reporting to the sump. These other systems have been designed and fabricated for in-plant test work.
引用
收藏
页码:177 / 189
页数:13
相关论文
共 50 条
  • [41] WET FINE GRINDING IN A LABORATORY STIRRED BALL MILL
    Toraman, O. Y.
    Katircioglu, D.
    [J]. 10TH INTERNATIONAL MULTIDISCIPLINARY SCIENTIFIC GEOCONFERENCE: SGEM 2010, VOL I, 2010, : 691 - +
  • [42] Fine dry grinding of zeolite in a laboratory ball mill
    Ozkan, A
    Yekeler, M
    [J]. PARTICLE & PARTICLE SYSTEMS CHARACTERIZATION, 2003, 20 (04) : 276 - 282
  • [43] Automatic control on the grinding classification system of ball mill
    Duan, Ren-Jun
    Guo, Qi
    Shao, Liang
    Luo, Hong-Yuan
    Li, Shi-Ping
    [J]. Kuangye Yanjiu Yu Kaifa/Mining Research and Development, 2001, 21 (06): : 18 - 20
  • [44] Ball Mill Grinding Circuit Based on MPC and EID
    Fang, Mingxing
    Chen, Luyao
    Shun, Qing
    Du, Youwu
    Zheng, Rui
    Lu, Zibao
    [J]. 2018 37TH CHINESE CONTROL CONFERENCE (CCC), 2018, : 3491 - 3495
  • [45] Study on ball mill grinding of a cassiteritepolymetallic sulfide ore
    Ma, S.
    Mo, W.
    Wang, G.
    Su, X.
    Yang, J.
    Shi, Z.
    [J]. XXV International Mineral Processing Congress 2010, IMPC 2010, 2010, 2 : 991 - 999
  • [46] Wet grinding of a biocidal polyformaldehyde filler in a ball mill
    Susorov, I.A.
    [J]. 1825, Maik Nauka-Interperiodica Publishing (71):
  • [47] INFLUENCE OF PULP VISCOSITY ON FINE GRINDING IN A BALL MILL
    CLARKE, B
    KITCHENE.JA
    [J]. BRITISH CHEMICAL ENGINEERING, 1968, 13 (07): : 347 - &
  • [48] Batch grinding studies by a ball mill for hematite ore
    Tukarambai, M.
    Varma, M. S. Hemanth
    Raju, Ch A. I.
    [J]. MATERIALS TODAY-PROCEEDINGS, 2020, 26 : 825 - 832
  • [49] Influence of lifter height on the grinding efficiency of ball mill
    Sun, Zhongchao
    Yu, Xiangjun
    Fu, Kaijin
    Wang, Tianqing
    Zhang, Kai
    [J]. ADVANCES IN ENERGY SCIENCE AND EQUIPMENT ENGINEERING, 2015, : 1931 - 1934
  • [50] The Influence of the Grinding Media Diameter on Grinding Efficiency in a Vibratory Ball Mill
    Tomach, Pawel
    [J]. MATERIALS, 2024, 17 (12)