Experimental investigation on effect of loading rate on fracture behavior of coal-seam roof rock

Lichao Chen, S. Lyu, Zhang Guo, Yuhang Xiao
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Abstract

The fracture behavior of coal-seam roof rock in coal mining is a key and controlling factor for the mode optimization of the artificial roof caving. However, the fracture mechanism of roof rock under loading is not clear. In the work, the split Hopkinson pressure bar (SHPB) experiment was carried out using semicircular bending samples from the sandstone of coal-seam roof rock in the Junger mining area of Inner Mongolia at the loading rate of 0.35–3.78 GPa·m0.5·s−1, and the dynamic fracture behavior and energy dissipation mechanism of samples under different loading rates were investigated. The result shows that the dynamic stress–strain process of the hard roof rock includes four stages: linear instantaneous compaction, linear elastic compression, failure, and fracture extension, in which the failure forms changes from brittle fracture to ductile fracture with the increase of loading rate. The mode I fracture toughness increases linearly under confining pressure. In addition, the propagation orientation of induced fractures is parallel to the loading direction, and the gravel in the samples can inhibit fracture extension, resulting in changing the fracture extension path. Further, the energy absorption efficiency of the samples during the fracture process decreases with the increase in the loading rate.
加载速率对煤层顶板断裂行为影响的试验研究
采煤过程中煤层顶板岩石的断裂行为是人工放顶板模式优化的关键和控制因素。然而,顶板在荷载作用下的断裂机理尚不清楚。采用内蒙古准格尔矿区煤层顶板砂岩半圆形弯曲试样,在0.35 ~ 3.78 GPa·m0.5·s−1加载速率下进行了劈裂霍普金森压杆(SHPB)试验,研究了不同加载速率下试样的动态断裂行为和能量耗散机制。结果表明:硬顶板岩石的动应力-应变过程包括线性瞬时压实、线弹性压缩、破坏和裂缝扩展四个阶段,随着加载速率的增加,破坏形式由脆性断裂向韧性断裂转变;围压作用下,I型断裂韧性呈线性增加。此外,诱导裂缝的扩展方向与加载方向平行,试样中的砾石可以抑制裂缝扩展,从而改变裂缝扩展路径。试样在断裂过程中的能量吸收效率随加载速率的增加而降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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