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Application of subspace detection on a surface seismic network monitoring a deep silver mine

机译:子空间检测在深银矿地震网络上的应用

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Seismic monitoring is an important tool for understanding and mitigating seismic risk in many mining operations, especially those with deep, burst-prone conditions. However, establishing and operating a seismic network that produces quality seismic data can be very expensive due to equipment and labour costs associated with installation and maintenance of seismic stations. Researchers with the National Institute for Occupational Safety and Health are exploring data processing techniques that can improve the quality of a seismic event catalogue that do not require installing additional instrumentation. This paper presents the application of subspace methods to increase event detection capabilities of a surface seismic network monitoring a deep underground metal mine in the northwest of the United States of America. Events recorded on the network from late April to early July 2016 are used to identify similar, lower-magnitude events that occurred in a 15-day study period in June of the same year. False detection rates were evaluated by comparing results with a catalogue generated by an in-mine seismic monitoring system, and by visually examining filtered continuous waveform data at the nearest stations to the underground workings. The number of successful event detections more than doubled, with no false detections. However, detected events included production blasts that required screening based on proximity to blasting time. Acceptable estimates of magnitudes and locations for newly detected events were obtained. The application of similar methodologies to other networks may substantially augment event catalogues and provide additional data that can be used in seismic risk analysis to improve mine safety. When continuous waveform data are stored, such processing maybe undertaken long after data collection is complete - a particularly valuable capability for investigating emerging stability issues.
机译:地震监测是在许多采矿业务中理解和减轻地震风险的重要工具,尤其是那些具有深刻,突破的条件的抗震风险。然而,由于与地震车站的安装和维护相关的设备和劳动力成本,建立和操作产生质量地震数据的地震网络可能非常昂贵。与国家职业安全和健康研究院的研究人员正在探索数据处理技术,可以提高不需要安装其他仪器的地震事件目录的质量。本文介绍了子空间方法的应用,提高了地面地震网络的事件检测能力监测美利坚合众国西北地下地下金属矿的地下金属矿。从4月下旬到2016年7月初的网络上录制的活动用于识别同年6月在15天的学习期间发生的类似,低级事件。通过将由内部地震监测系统生成的目录进行比较,并通过在最近站点的视觉上检查到地下工作的目录来评估假检测速率。成功事件检测的数量超过加倍,没有假检测。然而,检测到的事件包括基于泄漏时间的邻近筛选的生产爆炸。获得了可接受的新检测事件的幅度和位置的估计。将类似方法应用于其他网络的应用可能基本上增加了事件目录,并提供了可用于地震风险分析的额外数据,以提高矿井安全性。存储连续波形数据时,可以在数据收集完成后长时间进行这种处理 - 一种特别有价值的来调查新兴稳定性问题。

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