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金属矿山 ›› 2026, Vol. 55 ›› Issue (4): 116-124.

• 矿物工程 • 上一篇    下一篇

复合力场协同强化微细粒弱磁性矿物高梯度磁选进展与展望#br#

计云珩,曾剑武,张浩田,赖玉航   

  1. 昆明理工大学国土资源工程学院,云南 昆明 650093
  • 出版日期:2026-04-15 发布日期:2026-05-08
  • 通讯作者: 曾剑武(1990—),男,副教授,博士,硕士研究生导师。
  • 作者简介:计云珩(2001—),男,硕士研究生。
  • 基金资助:
    国家自然科学基金项目(编号:52564036);云南省基础研究计划项目(编号:202401AT070371);云南省兴滇英才计划青年人才项目
    (编号:XDYC-QNRC-2022-0125)。

Progress and Prospect of High-Gradient Magnetic Separation of Microfine Weak Magnetic Minerals Synergistically Strengthened by Composite Force Field#br# #br#

JI Yunheng,ZENG Jianwu,ZHANG Haotian,LAI Yuhang   

  1. Faculty of Land Resource Engineering,Kunming University of Science and Technology,Kunming 650093,China
  • Online:2026-04-15 Published:2026-05-08

摘要: 高梯度磁选是处理弱磁性矿产资源的关键技术,虽具处理量大、抛尾能力强的优点,但其分选精度与选
择性仍有不足。为解决此问题,将高梯度磁场与流体力场、振动力场或离心力场等进行耦合,形成复合力场分选模式,
成为提升分选效率与选择性的有效途径。本文旨在系统综述近二十年来复合力场下高梯度磁选技术的发展脉络与
研究现状。首先,从磁场-流体力场、磁场-振动力场及磁场-离心力场三类核心耦合模式切入,深入剖析其强化分选
的物理机理(如利用脉动惯性力降低机械夹带、借助振动力破坏磁团聚),并总结了关键工艺参数的优化规律。其次,
评述了基于FEM、CFD-DEM 等数值模拟技术在多场耦合分析、设备优化与微观机理可视化方面的研究进展。本文结
合具体应用案例(如低品位铁矿、微细粒铜钼矿的分选及赤泥中铁的回收,回收率可提升至37%~40%)阐明了该技术
的工业应用潜力。最后,在整合现有成果的基础上,指出当前研究在复合场耦合机理的量化表征、设备大型化与智能
化及绿色低碳工艺开发等方面仍面临挑战,并展望了该技术在二次资源回收与环保领域的发展方向。

关键词: 复合力场 , 高梯度磁选 , 多场耦合 , 分选机理 , 微细粒矿物 , 数值模拟

Abstract: High-gradient magnetic separation (HGMS) is a key technology for processing weakly magnetic mineral resources,
offering advantages such as high throughput and effective tailing discarding,yet it suffers from limited separation precision
and selectivity. To address these limitations,coupling high-gradient magnetic fields with additional force fields (e. g. ,hydrodynamic,
vibrational,or centrifugal) to form a composite force field separation mode has emerged as an effective strategy for
enhancing separation efficiency and selectivity. This paper aims to provide a systematic review of the developments and research
status of composite force field HGMS technology over the past two decades. Firstly,focusing on three core coupling modes:magneto-
hydrodynamic,magneto-vibrational,and magneto-centrifugal,the paper delves into their underlying strengthening mechanisms
(e. g. ,utilizing pulsating inertial force to reduce mechanical entrainment,employing vibration to disrupt magnetic agglomeration)
and summarizes the optimization principles for key operational parameters. Secondly,it reviews the progress in numerical
simulation technologies,such as FEM and CFD-DEM,for multi-field coupling analysis,equipment optimization,and visualization
of microscopic separation mechanisms. By integrating specific application cases (e. g. ,the separation of low-grade iron
ore and fine-grained copper-molybdenum ore,and iron recovery from red mud,with recovery rates exceeding 37%-40%),
this paper illustrates the industrial application potential of the technology. Finally,based on a synthesis of existing achievements,
current challenges are identified,including the quantitative characterization of composite field coupling mechanisms,the
scaling-up and intellectualization of equipment,and the development of green,low-carbon processes. Future development directions
in secondary resource recovery and environmental protection are also prospected.

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