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首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Failure mechanisms in coal: Dependence on strain rate and microstructure
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Failure mechanisms in coal: Dependence on strain rate and microstructure

机译:煤的破坏机理:取决于应变率和微观结构

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The brittle coal failure behavior under various axial strain rates from 10~(-3) to 10~(-2) s~(-1) is experimentally and numerically studied. The numerical microscale finite difference model is built on the accurate X-ray microcomputed tomography images, which provides a ground-breaking and bottom-up approach to investigate the effects of microstructure on coal failure under various strain rates. Experimentally, prior to loading, the coal sample is scanned, and the three-dimensional coal structuremodel is constructed. The microheterogeneous structures are incorporated in the model, which facilitates the deformation and failure mechanism analysis under different loading conditions. The results reveal that the microheterogeneous structures significantly affect the evolution of stress concentrations and deformation behaviors in the sample. The coal tends to fail in the shear mode before the peak strength, since the shear zone is created with high displacements. However, tensile failure ultimately controls the failure process after the peak strength. Notably, the strain rate dependence of coal strength is observed, and an empirical relationship is proposed to describe the dynamic strength of the coal under various loading strain rates. Importantly, the coal strengthens with an increase in strain rate. For brittle material, such as coal, the strength and failure mechanism are strain rate and microstructure dependent. The strain rate-dependent coal strength index (n) is found to be a dynamic parameter in the range of strain rate from 10~(-3) to 10~(-2) s~(-1), and this finding may extend the concept of strain rate dependence over a broader range of loading conditions.
机译:实验和数值研究了在10〜(-3)到10〜(-2)s〜(-1)各种轴向应变率下的脆性煤破坏行为。数值微尺度有限差分模型建立在精确的X射线微计算机断层扫描图像上,为研究微观结构在不同应变率下对煤破坏的影响提供了一种突破性的方法。实验上,在装煤之前,先对煤样品进行扫描,然后建立三维煤结构模型。模型中包含了微异质结构,有助于在不同载荷条件下进行变形和破坏机理分析。结果表明,微异质结构显着影响样品中应力集中和变形行为的演变。由于剪切区是在高位移的情况下产生的,因此在峰值强度之前,煤倾向于在剪切模式下失效。但是,拉伸破坏最终控制了峰值强度后的破坏过程。值得注意的是,观察到了煤强度的应变率依赖性,并提出了经验关系来描述煤在各种载荷应变率下的动态强度。重要的是,煤随着应变率的增加而增强。对于脆性材料(例如煤),强度和破坏机理取决于应变率和微观结构。发现应变率相关的煤强度指数(n)是应变率从10〜(-3)到10〜(-2)s〜(-1)范围内的一个动态参数,这一发现可能会扩展在更广泛的载荷条件下应变率依赖性的概念。

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