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金属矿山 ›› 2025, Vol. 54 ›› Issue (11): 31-39.

• • 上一篇    下一篇

瓷球磨矿在金属矿山的应用研究

吴彩斌1,2 方 鑫1 廖宁宁1,2 袁程方3 童佳琪1 陈郅隆1   

  1. 1.江西理工大学资源与环境工程学院,江西 赣州 341000;2.战略金属矿产资源低碳加工与利用江西省重点实验室, 江西 赣州 341000;3.江西理工大学国际创新研究院,江西 南昌 330000
  • 出版日期:2025-11-15 发布日期:2025-12-01
  • 作者简介:吴彩斌(1972—),男,教授,博士,博士研究生导师。
  • 基金资助:
    国家自然科学基金面上项目(编号:52474292)。

 Research on the Application of Ceramic Ball Grinding in Metal Mines

WU Caibin1,2 FANG Xin1 LIAO Ningning1,2 YUAN Chengfang3 TONG Jiaqi1 CHEN Zhilong1   

  1. 1.School of Resources and Environmental Engineering,Jiangxi University of Science and Technology,Ganzhou 341000,Jiangxi,China; 2.Jiangxi Key Laboratory of Low-Carbon Processing and Utilization of Strategic Metal Mineral Resources,Ganzhou 341000,Jiangxi, China;3.International Innovation Research Institute,Jiangxi University of Science and Technology,Nanchang 330000,Jiangxi,China
  • Online:2025-11-15 Published:2025-12-01

摘要: 磨矿过程的高能耗问题已成为制约选矿行业可持续发展的关键瓶颈。针对这一挑战,系统研究了纳米 陶瓷球作为新型磨矿介质的节能降耗机制及其工业应用潜力。研究表明:在介质生产环节,纳米陶瓷球的全生命周 期碳排放强度较传统钢球降低40%以上;在磨矿动力学层面,其运动轨迹范围扩大使动能转化效率显著提升150%, 同时通过高频低能碰撞模式有效抑制过粉碎现象,使磨矿比能耗降低35%~70%。陶瓷球凭借高硬度、高强度以及低 磨耗的优异特性,在黑色金属和有色金属矿山应用中,综合能耗与介质成本降幅均超过50%。然而,当前瓷球磨矿技 术仍面临密度不足、与磨机结构不匹配及工艺链协同差等瓶颈。通过开发3.8~5.7 g/cm3高密度瓷球、设计新一代轻 量化节能磨矿机、构建新一代低碳粉碎工艺,有望推动瓷球磨矿成为新一代低碳粉碎工艺核心,实现节能效率翻倍, 大幅削减粉碎成本。

关键词: 纳米陶瓷球 磨矿机理 节能降耗 球磨机

Abstract:  The high energy consumption issue in the grinding process has emerged as a critical bottleneck restricting the sustainable development of the mineral processing industry.To address this challenge,a systematic study was conducted on the energy-saving mechanisms and industrial application potential of nano-ceramic balls as a novel grinding medium.Research findings indicate that:in the production phase,the full-life cycle carbon emission intensity of nano-ceramic balls is reduced by over 40% compared to traditional steel balls;In terms of grinding kinetics,their expanded motion trajectory range enhances ki netic energy conversion efficiency by 150%,while the high-frequency low-impact collision mode effectively mitigates over crushing,reducing specific grinding energy consumption between 35% to 70%.With their superior properties of high hardness, high strength,and low wear,ceramic balls achieve comprehensive energy and medium cost reductions exceeding 50% in both ferrous and non-ferrous metal mines.However,current ceramic ball grinding technology still faces limitations such as insuffi cient density,poor compatibility with mill structures,and inadequate process chain coordination.By developing high-density ce ramic balls (3.8~5.7 g/cm3),designing next-generation lightweight energy-saving mills,and establishing a new low-carbon comminution process,ceramic ball grinding could become the core of next-generation low-carbon crushing technology,doubling energy efficiency and significantly reducing crushing costs.

Key words: nano-ceramic balls,grinding mechanism,energy conservation and consumption reduction,grinding mill

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