地下采场大块矿岩二次破碎机器人技术研究现状与展望

    Research status and prospects of robotic technology for secondary breakage of oversized ore and rock in underground stopes

    • 摘要: 随着地下矿山开采深度和生产强度的不断提升,采场大块矿岩的产生已成为制约出矿效率、设备安全与生产连续性的关键问题。现阶段二次破碎环节多依赖爆破、机械冲击或静态破碎等方式,但在钻孔、装药与破碎执行等环节通常需要人员进入采场或近距离作业,长期暴露于冒顶片帮、飞石、高噪声及有毒有害气体等风险环境,安全保障压力较大。为降低人员暴露风险,机器人技术与静态破碎剂协同的二次破碎方式可作为重要发展方向。围绕采场大块矿岩二次破碎机器人在自动装药与自主导航环节的需求,梳理国内外井下装药机器人系统的典型方案,总结其功能特点与主要不足。综合分析表明,现有研究多侧重于基于二维视觉结果的孔位识别与对准操作,对炮孔三维姿态的高精度感知与闭环装药控制支撑不足。在关键技术层面,概述炮孔视觉识别、炮孔三维定位、炮孔姿态感知、地图构建、装备定位、路径规划、机械臂装药路径规划等方法体系,并结合井下粉尘、弱光、遮挡与空间受限等工况分析其适用性。为提高采场大块矿岩二次破碎机器人的感知精度与自动化水平,未来应该加强对炮孔实际姿态的感知,并加强各环节算法及传感器在采场环境的适应性。

       

      Abstract: With the continuous increase in mining depth and production intensity in underground mines, the generation of oversized ore and rock in stopes has become a critical factor constraining ore-drawing efficiency, equipment safety, and production continuity. At present, secondary breakage is mainly performed by blasting, mechanical impact, or static cracking. However, personnel are generally required to enter stopes or work in close proximity during drilling, charging, and breakage operations, resulting in prolonged exposure to hazardous conditions such as roof falls and rib spalling, fly rock, high noise levels, and toxic and harmful gases, thereby imposing considerable pressure on operational safety. To reduce personnel exposure to these hazards, the integration of robotic technologies with static cracking agents represents a promising direction for secondary breakage. Focusing on the requirements for automated charging and autonomous navigation of the secondary breakage robot of oversized ore and rock in stopes, this paper reviews representative underground charging robot systems developed in China and abroad and summarizes their functional characteristics and major limitations. A comprehensive analysis indicates that existing studies primarily focus on borehole localization and alignment based on two-dimensional visual information, while providing insufficient support for high-precision perception of three-dimensional borehole poses and closed-loop charging control. At the key-technology level, this paper reviews methodological frameworks for visual borehole recognition, three-dimensional borehole localization, borehole orientation perception, map construction, equipment localization, navigation path planning, and robotic-arm charging trajectory planning. The applicability of these methods is further analyzed under challenging underground conditions characterized by dust, low illumination, occlusion, and confined operating spaces. To improve the perception accuracy and automation level of secondary breakage robot of oversized ore and rock in stopes, future research should strengthen the perception of actual borehole poses and enhance the adaptability of algorithms and sensors throughout the operational process to stope environments.

       

    /

    返回文章
    返回