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Experimental Research on Acoustic Emission Characteristics and Felicity Effects during Coal Fatigue Failure under Cyclic Loading

机译:循环加载下煤疲劳失效期间声发射特性和富集效应的实验研究

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In order to study the acoustic emission characteristics and Felicity effect in the process of coal fatigue failure and reveal the internal relationship between the fatigue damage evolution law and the acoustic emission activity, with the help of MTS815.02 electrohydraulic servo rock mechanics test system and PCI-2 acoustic emission detection and analysis system, a triaxial cycling loading acoustic emission test was carried out on the coal samples. The results show that the higher the upper limit stress is, the more obvious the degree of fatigue damage will be caused by coal samples. At the same time, the more active acoustic emission signal will appear. The coal samples under linear loading are on the initial damage state, and slight fatigue, moderate fatigue, deep fatigue, and ultimate fatigue failure under cyclic loading. The acoustic emission shows the “L-” type development evolution law in any previous stress level range, while at the last stress level, it shows the obvious “U-” type development evolution law. The higher the frequency of the cyclic loading is, the higher the rate of initiation and expansion of the microcrack will be, while the more obvious acoustic emission phenomenon will appear. Furthermore, the ringing counting rate is basically the same as that of the energy counting rate. Under triaxial cyclic loading, a shear failure mode that extends along different directions of fracture surface will be presented. The acoustic emission in the range of different stress levels shows a different degree of Felicity effect. In contrast, it is more reasonable to use the principal stress difference as a parameter to study the Felicity effect of coal under cyclic loading.
机译:为了研究煤疲劳失效过程中的声发射特性和富集效应,借助MTS815.02电液伺服岩机械测试系统和PCI揭示了疲劳损伤进化法与声发射活动的内部关系-2声发射检测和分析系统,在煤样上进行三轴循环负载声学发射试验。结果表明,上限应力越高,煤样疲劳损害的程度越明显。同时,将出现更有源的声发射信号。线性载荷下的煤样在循环载荷下初始损伤状态,以及轻微的疲劳,疲劳,深度疲劳,终极疲劳失效。声发射显示了任何先前的应力水平范围内的“L-”型发展进化法,而在最后的应力水平上,它显示了明显的“U-”发展进化法。循环载荷的频率越高,微裂纹的启动速率越高,而越明显的声发射现象将出现。此外,振铃计数率基本上与能量计数率的计数率基本相同。在三轴循环加载下,沿着沿裂缝表面的不同方向延伸的剪切失效模式。不同应力水平范围内的声发射显示出不同程度的富集效果。相比之下,使用主要应力差异作为参数来研究煤的循环载荷下的浓度效应是更合理的。

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