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首页> 外文期刊>International Journal of Rock Mechanics and Mining Sciences >Microseismic investigation of mining-induced brittle fault activation in a Chinese coal mine
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Microseismic investigation of mining-induced brittle fault activation in a Chinese coal mine

机译:中国煤矿采矿诱导脆性断裂激活的微震调查

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摘要

The process whereby a brittle fault was activated by mining is not only significant for disaster prediction, but also for earthquake prediction. Thus, it was necessary to study their activation process. In this study, stress state, AE (acoustic emission)/MS (microseismic) activities during brittle fault activation, stages of brittle fault activation, and the relation between AE/MS activities and brittle fault parameters were analysed and it was feasible to identify buried brittle faults, determine their parameters and activation process based on MS monitoring. The No. 22517 working face in the Dongjiahe Coalmine was taken as an example. Firstly, a buried brittle fault was identified in No. 22517 working face by the MS monitoring method. Secondly, the buried brittle fault parameters were determined. Its azimuth angle was 307.5 degrees in the orbital roadway and 357.5 degrees on the haulage roadway. Its dip angle was 73 degrees and it was a reverse fault. Thirdly, the activation process of the buried brittle fault was determined. The buried brittle fault was not affected by the mining activities when the distance (from mining activities to the buried brittle fault) was over 300 m, the 'disturbance stage' was from 300 m to 80 m, and the `local activation stage' from 100 m to 30 m, and the 'whole activation stage' around 30 m. The b value decreased during the process of brittle fault activation and reached a minimum value at the whole activation stage; it was concluded that these changes are related to the stress distribution around the brittle fault. The results demonstrated that MS monitoring technology can detect small buried brittle faults ahead of the working face, and is also an effective method to study the process and mechanism of brittle fault activation.
机译:通过采矿激活脆性故障的过程不仅是灾害预测的重要性,而且对于地震预测也是重要的。因此,有必要研究其激活过程。在该研究中,分析了脆性故障激活期间的应激状态,AE(声发射)/ MS(微震发射)活化,脆性故障激活的阶段,以及AE / MS活性和脆性故障参数之间的关系,可识别埋藏是可行的脆性故障,基于MS监控确定其参数和激活过程。作为一个例子,沿东家海煤矿的第22517号工作面孔。首先,通过MS监测方法在No.22517工作面上识别了掩埋脆性故障。其次,确定了埋地的脆性故障参数。其方位角在轨道道路中为307.5度,拖运道路357.5度。它的倾角为73度,是反向故障。第三,确定了掩埋脆性故障的激活过程。当距离(从采矿活动到埋地的脆性故障的煤炭活动)超过300米的距离(从采矿活动中)的埋头脆性的影响不受影响,“扰动阶段”为300米至80米,以及“局部激活阶段” 100米至30米,“整个激活阶段”约为30米。在脆性故障激活过程中,B值降低,并在整个激活阶段达到最小值;得出结论,这些变化与脆性故障周围的应力分布有关。结果表明,MS监测技术可以在工作面上检测小埋地脆性故障,也是研究脆性故障激活过程和机制的有效方法。

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