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Analysis of energy dissipation and crack evolution law of sandstone under impact load

机译:冲击载荷下砂岩能量耗散和裂纹演化法分析

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Based on the split Hopkinson pressure bar (SHPB) laboratory tests, the dynamic mechanical properties and failure mode of sandstone are analyzed, and a SHPB numerical model is established by particle flow code (PFC). The dynamic stress equilibrium, stress wave propagation, stress-strain characteristics and failure mode are analyzed, respectively, which verifies the effectiveness of the model. Then we studied the impact failure process form both mesoscopic cracks and energy point of views. The results show that microcracks are activated in large quantities with the increasing of strain rate. When the crack density reaches a certain degree, the interaction between the cracks can not be ignored. The failure mode gradually changes from local tension-shear damage mode to axial splitting failure mode and then to crushing failure mode. During the impact failure process, the energy is mainly consumed by the generation of the cracks and the friction caused by the slip of the particles, namely, broken dissipation energy. As the impact load increases, the broken dissipation energy density shows the high-speed growth and the low-speed growth stage successively with a double exponential growth pattern. The friction energy increases continually by a certain percentage, which indicates it should be considered during the analysis of fracturing process. Moreover, the dynamic strength and fragmentation degrees are closely related to energy dissipation density.
机译:基于分裂霍普金森压力棒(SHPB)实验室测试,分析了砂岩的动态力学性能和故障模式,通过粒子流量(PFC)建立了SHPB数值模型。分别分析动态应力平衡,应力波传播,应力 - 应变特性和故障模式,验证了模型的有效性。然后我们研究了冲击失败过程,形成了介观裂缝和观点的能量点。结果表明,随着应变速率的增加,微裂纹以大量激活。当裂缝密度达到一定程度时,裂缝之间的相互作用不能被忽略。故障模式从局部张紧剪切损坏模式逐渐变化到轴向分离失败模式,然后缩短破坏故障模式。在冲击失败过程中,能量主要由裂缝产生和由颗粒滑动引起的摩擦,即破碎的耗散能量。随着冲击载荷的增加,破碎的耗散能量密度表明,通过双指数增长模式连续地显示出高速增长和低速生长阶段。摩擦能量不断增加一定的百分比,这表明应该在分析压裂过程中考虑。此外,动态强度和碎裂度与能量耗散密度密切相关。

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