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金属矿山 ›› 2026, Vol. 55 ›› Issue (1): 13-21.

• • 上一篇    下一篇

针-针电极脉冲破岩技术研究进展与展望

张凤鹏1,2 陈锡楷1,2 刘传义1,2 李欣冉1,2 余晓涛3   

  1. 1. 深部金属矿智能开采与装备全国重点实验室,辽宁 沈阳 110819;2. 辽宁省深部工程与智能技术重点实验室,
    辽宁 沈阳 110819;3. 江西铜业股份有限公司德兴铜矿,江西 德兴 334224
  • 出版日期:2026-01-15 发布日期:2026-02-12
  • 作者简介:张凤鹏(1967—),男,教授,博士,博士研究生导师。
  • 基金资助:
    国家自然科学基金项目(编号:52274114)。

Research Progress and Prospects of Needle-Type Electrode Pulse Rock Breaking Technology

ZHANG Fengpeng1,2 CHEN Xikai1,2 LIU Chuanyi1,2 LI Xinran1,2 YU Xiaotao3   

  1. 1. State Key Laboratory of Intelligent Deep Metal Mining and Equipment,Shenyang 110819,China;
    2. Key Laboratory of Liaoning Province on Deep Engineering and Intelligent Technology,Shenyang 110819,China;
    3. Dexing Copper Mine,Jiangxi Copper Co. ,Ltd. ,Dexing 334224,China
  • Online:2026-01-15 Published:2026-02-12

摘要: 针-针电极脉冲破岩技术作为高压电脉冲破岩领域的重要分支,因其在深地资源开发、硬岩高效破碎等
工程场景中展现出的定向可控性与绿色环保特性,近年来在岩石力学与智能采矿领域备受关注。系统剖析了高压电
脉冲破岩技术的分类体系、作用原理及技术特点,分别从岩石物性微结构效应、水气环境耦合机制及电参数调控规律
3 个方面阐述了针-针电极脉冲破岩技术的研究进展。研究表明:① 岩石内矿物成分及孔隙等微结构在电学、力学和
热学性能方面的差异导致脉冲放电过程中电场强度、应力场和热场分布不均匀,使得岩石内出现不均匀微破裂,最终
导致岩石宏观碎裂;② 等离子通道冲击波在水气介质中的衰减特性与电极形态参数共同决定能量传递效率,存在最
优电极间距与脉冲上升沿时间;③ 深部高应力环境下,岩体储能特性与脉冲参数显著影响破碎模式转变阈值。从发
展趋势与应用前景看,深地环境应用中电脉冲破岩机理研究应该考虑深部岩体高应力以及高液体压力对破岩效率的
影响;电脉冲设备将朝着高能量密度、高频率充放电、小型化和智能调控方向发展,解决高能量密度与体积之间的矛
盾,提升系统的实时监测和精准调控能力。智能算法的应用以及高效能量存储和释放技术的突破,将推动特种破岩
机器人的发展以适应特殊环境井下矿岩钻掘采需求;综合考虑岩石内在特性、应力等外部环境因素,通过优化回路电
阻、电感与等离子通道电阻进行调控,提高电能利用率和破岩效果。

关键词: 高压电脉冲 破岩 等离子通道 冲击波 电脉冲设备

Abstract: As an important branch of high-voltage electric pulse rock-breaking technology,needle-to-needle electrode
pulsed rock breaking has gained significant attention in rock mechanics and intelligent mining due to its directional controllability
and environmental benefits in deep-earth resource development and high-efficiency hard rock fragmentation. This paper
systematically reviews the classification,working principles,and technical characteristics of high-voltage electric pulse rockbreaking
technology and examines the research progress of needle-to-needle electrode pulsed rock breaking from three perspectives:
the microstructural effects of rock physical properties,the coupling mechanism of water-air environments,and the regulation
of electrical parameters. The study reveals that:① Differences in the electrical,mechanical,and thermal properties of rock
minerals and pores lead to uneven distributions of electric field strength,stress,and thermal fields during pulse discharge,causing
localized microfractures that eventually result in macroscopic rock fragmentation;② The attenuation characteristics of plasma
channel shock waves in water-air media,along with electrode geometry,determine energy transfer efficiency,with an optimal
electrode spacing and pulse rise time;③ In high-stress deep environments,rock energy storage characteristics and pulse parameters
significantly affect the threshold for fracture mode transitions. From the perspective of future development and applications,
studies on the rock-breaking mechanism of electric pulses in deep-earth environments should consider the effects of high
stress and high fluid pressure on rock-breaking efficiency. Pulsed electric equipment is expected to evolve toward high energy
density,high-frequency discharge,miniaturization,and intelligent regulation,addressing the trade-off between energy density and device size while enhancing real-time monitoring and precise control. The application of intelligent algorithms and the
breakthrough in efficient energy storage and release technologies will drive the development of special rock-breaking robots to
meet the mining and drilling requirements in special environments. Taking into account the internal characteristics and external
environmental factors such as stress of rocks,the control of circuit resistance,inductance,and plasma channel resistance is optimized
to improve the utilization rate of electrical energy and rock breaking effect.

Key words: high voltage electric pulse,rock fracture,plasma channel,shock wave,electric pulse equipment

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