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Investigation into Mechanism of Floor Dynamic Rupture by Evolution Characteristics of Stress and Mine Tremors: A Case Study in Guojiahe Coal Mine, China

机译:通过应力和震颤的演化特征研究底板动力破裂的机理-以中国郭家河煤矿为例

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摘要

In order to explore the mechanism of floor dynamic rupture, the current study adopts a thin plate model to further investigate the condition of floor failure. One of the possible explanations could be floor buckling due to high horizontal stress and dynamic disturbance ultimately leading to rapid and massive release of elastic energy thus inducing dynamic rupture. Seismic computed tomography and 3D location were employed to explore the evolution characteristics of floor stress distribution and positions of mine tremors. In the regions of floor dynamic rupture, higher P-wave velocity was recorded prior to the dynamic rupture. On the contrary, relatively lower reading was observed after the dynamic rupture thus depicting a high stress concentration condition. Meanwhile, evolution of mine tremors revealed the accumulation and subsequent release of energy during the dynamic rupture process. It was further revealed that dynamic rupture was induced due to the superposition of static and dynamic stresses: (i) the high static stress concentration due to frontal and lateral abutment stress from coal pillar and (ii) dynamic stress from the fracture and caving of coal pillar, hard roof, and key stratum. In the later part of this study, the floor dynamic rupture occurrence process would be reproduced through numerical simulations within a 0.6 sec time frame. The above-mentioned findings would be used to propose a feasible mechanism for prewarning and prevention of floor dynamic rupture using seismic computed tomography and mine tremors 3D location.
机译:为了探讨地板动力破裂的机理,目前的研究采用薄板模型进一步研究了地板破裂的条件。一种可能的解释可能是由于高水平应力和动态扰动引起的地板屈曲,最终导致弹性能量迅速大量释放,从而引起动态破裂。利用地震计算机体层摄影术和3D定位技术来探究底板应力分布和矿震位置的演变特征。在地面动态破裂区域,在动态破裂之前记录到较高的纵波速度。相反,在动态破裂后观察到相对较低的读数,因此表示高应力集中状态。同时,矿震的演变揭示了动态破裂过程中能量的积累和释放。进一步揭示出动静破裂是由于静应力和动应力的叠加引起的:(i)煤柱的正面和横向基台应力引起的高静应力集中,以及(ii)煤的破裂和崩落引起的动应力支柱,坚硬的屋顶和关键层。在本研究的后半部分,将通过在0.6秒的时间范围内进行数值模拟来再现地板动态破裂的发生过程。上述发现将用于提出一种可行的机制,以利用地震计算机断层扫描和矿震3D定位来预警和防止地面动态破裂。

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