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丘卡卢—佩吉铜金矿上部矿带微震监测与EI−CAV预警判识研究

Microseismic monitoring and EI-CAV early-warning identification in Upper Zone of Čukaru Peki copper-gold mine

  • 摘要: 以塞尔维亚丘卡卢—佩吉铜金矿上部矿带为研究对象,围绕“重点区域微震台网如何实现有效覆盖与可靠监测”“如何基于微震参数识别岩体失稳前兆”2个问题,构建了32通道在线微震监测系统,并对−200 m~−70 m中段的传感器布设、定位精度和震级探测能力进行了模拟评估。基于现场监测数据,分析了采动条件下微震事件的时空演化规律,并采用能量指数(EI)与累积视体积(CAV)开展联合判识。结果表明:优化后的监测台网可有效覆盖UZ主矿体及UZ−2区域,重点监测范围内平面定位精度优于15 m,最小可监测震级约为−2.3级;微震活动在时间上受爆破作业控制显著,呈“主震—余震型”日分布特征,在空间上主要集中于采场开采区、断层交汇部位及岩性过渡带;在2023年12月25日—31日,EI持续下降,而CAV快速增长,显示围岩由稳定积能阶段转入非稳定损伤演化阶段。现场事件验证表明,该组合指标可对较大尺度岩体破裂提供至少1 d的提前预警。微震监测结合EI−CAV联合判识可较好表征采动扰动下的地压活动规律,并为深部矿山地压预警提供技术依据。

     

    Abstract: This study focuses on the Upper Zone of the Čukaru Peki Copper-Gold Mine in Serbia and addresses two key issues: how to achieve effective coverage and reliable monitoring of critical zones using a microseismic monitoring network, and how to identify precursory signals of rock-mass instability based on microseismic parameters. A 32-channel online microseismic monitoring system was established, and the sensor layout, source-location accuracy, and magnitude detection capability for the −200 m to −70 m levels were evaluated through numerical simulation. Based on field monitoring data, the spatiotemporal evolution of microseismic events under mining disturbance was analyzed, and a joint identification method using the energy index (EI) and cumulative apparent volume (CAV) was employed. The results show that the optimized monitoring network can effectively cover the UZ main orebody and the UZ−2 zone, with planar location accuracy better than 15 m in the key monitoring area and a minimum detectable magnitude of approximately −2.3. Temporally, microseismic activity is strongly controlled by blasting operations and exhibits a daily distribution pattern of mainshocks and aftershocks. Spatially, events are mainly concentrated in active stoping areas, fault intersection zones, and lithological transition zones. From December 25 to December 31, 2023, EI shows a continuous decline whereas CAV increases rapidly, indicating that the surrounding rock mass transitions from a stable energy accumulation stage into an unstable damage evolution stage. Field verification shows that the combined EI-CAV indicator can provide at least 1 d of advance warning of relatively large-scale rock-mass fracturing. The study indicates that microseismic monitoring combined with EI-CAV joint identification can effectively characterize ground pressure activity patterns under mining disturbance and provide a technical basis for ground pressure early warning in deep underground mines.

     

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