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Experimental Study on the Effect of Brittleness on the Dynamic Mechanical Behaviors of the Coal Measures Sandstone

机译:脆性对煤煤砂岩动态力学行为效果的实验研究

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As one of the most crucial mechanical parameters of the rock materials, the effect of brittleness on the deformation and failure is of great practical significance for geotechnical construction and disaster prevention and mitigation. In this paper, the deformation and failure behaviors of the different brittle samples under dynamic loading were investigated using a split Hopkinson pressure bar (SHPB) experimental system. Besides, scanning electron microscopy (SEM) was also employed to study the relationship between the microscopic failures and rock brittleness and strain rate effects. The results revealed that the brittleness indexes BI 3 and BI 5 of the samples under uniaxial compression follow a linearly decreasing trend affected by the temperature changes, while the brittleness of the sample shows an increasing trend with the increase of strain rate under the dynamic loading. Also, the decline in the brittleness leads to an increase in the prepeak yield deformation phase of the sample under dynamic loading; after the peak point, the sample failure mode transitions from type I to type II with self-sustaining failure. Moreover, it was found that the dynamic strength increase factor presents a negative correlation with the sample brittleness. Finally, the macroscopic failure mode of the sample changes from split failure with multiple cracks to shear failure with few cracks due to the effect of decreasing brittleness. The failure surface of the sample gradually becomes smooth with the increase of brittleness, which manifests as a decrease in microcracks, and the gradual increase of the strain rate makes the failure surface rough, accompanied by an increase in microcracks.
机译:作为岩石材料最关键的机械参数之一,脆性对变形和故障的影响对于岩土建设和防灾和缓解具有巨大的实际意义。在本文中,使用分裂霍普金森压棒(SHPB)实验系统研究了动态载荷下不同脆性样品的变形和失效行为。此外,还采用了扫描电子显微镜(SEM)来研究显微镜故障和岩石脆性和应变率效应之间的关系。结果表明,单轴压缩下样品的脆性指数BI 3和BI 5遵循受温度变化影响的线性降低的趋势,而样品的脆性随着动态负荷下的应变率的增加而呈增加趋势。而且,脆性的下降导致样品在动态负荷下的预备屈服变形阶段的增加;在峰值点之后,采样故障模式从I型转换到II型,具有自维持失败。此外,发现动态强度增加因子与样品脆性呈现负相关性。最后,样品的宏观故障模式从具有多个裂缝的分裂失败发生变化,以剪切失效,由于降低脆性的效果。随着脆性的增加,样品的失败表面逐渐变得平滑,这表明作为微裂纹的降低,应变率的逐渐增加使得失效表面粗糙,伴随着微裂纹的增加。

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