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Experimental and numerical investigations on the failure processes and mechanisms of composite coal–rock specimens

机译:复合煤岩标本的失效过程和机制的实验性和数值研究

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Brittle failure is a fundamental failure pattern in many different materials, from small nanoscale materials with single crystals to the large earth crust. Many efforts have been dedicated to understanding the brittle failure mechanisms of individual brittle and semi-brittle materials. Limited studies have been conducted on the brittle failure of composite materials with interaction and energy feedback between different materials. Here we investigated the brittle failure pattern of coal–rock composite materials under uniaxial compression by laboratory tests and numerical simulations. We used a high-speed camera to capture the failure of coal–rock specimens. For all three tested coal–rock combined specimens, the rock failed with a splitting pattern that resulted from a single tensile fracture that developed sub-parallel to the loading direction. We regarded this brittle failure as a sliding-induced tensile fracture from frictional drag that was caused by unequal lateral deformation of the rock and coal under identical axial loading. The tensile crack propagated stably at?~?0.05 times the Rayleigh wave speed cR. We observed an unstable failure pattern of the coal samples that was characterized by the ejection of small pieces from the coal specimen surface. This behavior is attributed to the strain energy that is stored in the rock specimen, which releases when the coal fails. The excessive strain energy transitions into dynamic energy during coal failure. Our findings provide insight into the brittle failure mechanisms of composite materials and have significant implications at scales relevant to seismicity, engineering applications and geohazards.
机译:脆性失败是许多不同材料中的根本故障模式,从小纳米级材料,单个晶体到大地外壳。许多努力一直致力于了解个体脆性和半脆性材料的脆性失败机制。在不同材料之间的相互作用和能量反馈的复合材料的脆性失效上进行了有限的研究。在这里,我们通过实验室测试和数值模拟研究了单轴压缩下煤岩复合材料的脆性故障模式。我们使用高速相机来捕获煤岩标本的失效。对于所有三种测试的煤岩组合标本,岩石失效,具有由单个拉伸骨折产生的分裂图,该裂缝产生与装载方向的副平行。我们认为这种脆性失败作为从摩擦阻力的滑动诱导的拉伸骨折,这是由岩石和煤下的不等横向变形引起的相同轴向载荷引起的。拉伸裂纹稳定地传播在瑞利波速度Cr的0.05倍。我们观察到煤样的不稳定故障模式,其特征在于从煤样表面喷射小块。这种行为归因于存储在岩石样本中的应变能量,当煤会使释放时释放。过度应变能量在煤衰竭期间转变为动态能量。我们的研究结果提供了对复合材料的脆性失效机制的洞察力,并在与地震,工程应用和地质锯齿相关的尺度上具有显着影响。

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