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Relationship between EMR and dissipated energy of coal rock mass during cyclic loading process

机译:循环加载过程中EMR与煤岩体耗散能量的关系

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Dynamic collapses of deeply mined coal rocks are severe threats to miners. In order to predict the collapses more accurately using electromagnetic radiation (EMR), this paper researched the energy conversion mechanism in the damage process of coal rock mass, analysed its EMR and dissipated energy, and a relationship between which was established using the voltage amplitude of EMR signal and hysteresis loop generated in the loading and unloading cycles as a bridge; then a series of cyclic loading experiments using coal samples of Junde and Xinlu coal mines from Heilongjiang province were carried out, and EMR signal released during these cycles were collected. Results show that during a whole damage process of a sample, the cumulative values of EMR energy and corresponding dissipated energy (hysteresis loop area) well subject to the form of y = a ln(x) + b, whose correlation coefficients are above 0.90, and EMR signals received by different frequency antenna seldom impacted on this relationship; the total EMR energy released from the whole failure process of the samples obtained from adjacent sampling point in same mining area are different to some extent, so are the dissipated energy; compared with cyclic loading for coal rock mass orderly with the peak loads of 5 kN and 10 kN previously, the dissipated energy of direct using that of 15 kN increase 17.8%, and EMR signal is more abundant; EMR energy received in each cycle increase steadily with the improvement of load level, and in a single loading and unloading cycle, sometimes it is very rich in the unloading phase, even more than the loading one.
机译:深度开采的煤岩的动态坍塌是对矿工的严重威胁。为了利用电磁辐射(EMR)更准确地预测崩塌,本文研究了煤岩体损伤过程中的能量转换机理,分析了其岩浆的EMR和耗散能量,并利用电压幅值建立了两者之间的关系。 EMR信号和磁滞回线在加载和卸载循环中产生的桥梁;然后利用黑龙江省的junde和xinlu煤矿的煤样进行了一系列循环加载实验,并收集了在这些循环中释放的EMR信号。结果表明,在样品的整个损伤过程中,EMR能量和相应的耗散能量(磁滞回线面积)的累积值受y = a ln(x)+ b形式的影响,其相关系数大于0.90,不同频率天线接收到的EMR信号很少影响这种关系;同一矿区相邻采样点采集的样品在整个失效过程中释放的总EMR能量有所不同,耗散能量也有所不同。与之前峰值载荷分别为5 kN和10 kN的煤岩体的周期性载荷相比,直接使用15 kN的峰值的耗散能量增加了17.8%,EMR信号更加丰富。随着负载水平的提高,每个循环中接收到的EMR能量稳定增加,并且在单个加载和卸载循环中,有时在卸载阶段它的能量非常丰富,甚至超过了加载阶段。

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