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Experimental Investigation on Dynamic Fracture Mechanism and Energy Evolution of Saturated Yellow Sandstone under Different Freeze-Thaw Temperatures

机译:不同冻融温度下饱和黄色砂岩动态断裂机制和能量演化的实验研究

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摘要

The coupling effect of freeze-thaw (F-T) temperature and dynamic load on the dynamic mechanical properties and fracture mechanism of saturated yellow sandstone was experimentally investigated in this research. The dynamic compression tests on the specimen after different F-T temperatures (i.e., −5°С, −10°С, −15°С, −20°С, −30°С, and 20°С) have been carried out with split-Hopkinson pressure bar (SHPB) setup under eight F-T cycle numbers. The density and P-wave velocity of the specimens were obtained before and after the F-T tests. After the F-T tests, the specimen microstructures were examined via the scanning electron microscope (SEM). The dynamic fracture process was visualized by the high-speed camera. The particle size distribution and fragment shapes of the specimens were analyzed using a classifying screen. In addition, the energy dissipation law of specimens during the impact test was also discussed. Experimental results show that the dynamic elastic modulus, strength of the specimen, and the average particle size decrease with decreasing F-T temperature. SEM results reveal that low F-T temperature leads to severer internal damage of the specimen by inducing freeze-swell holes, interconnected cracks, and pore clusters. In addition, the fragmentation shapes of the failed specimens exhibit double-cone failure, single-side slope failure, double-side slope failure, and split failure. The energy dissipation increases gradually with increasing F-T temperature. This study helps to prevent geological disasters and optimize engineering design in cold regions.
机译:本研究在实验研究了冻融(F-T)温度和动态负荷对饱和黄砂岩动态力学性能和断裂机制的耦合效应。在不同的FT温度(即-5°С,-10°С,-15°С,-20°С,-30°С和20°С)上进行了动态压缩试验已经进行了分裂-Hopkinson压力杆(SHPB)设置为八个FT循环编号。在F-T试验之前和之后获得样本的密度和p波速度。在F-T测试之后,通过扫描电子显微镜(SEM)检查样品微结构。高速相机可视化动态断裂过程。使用分类屏幕分析样本的粒度分布和片段形状。此外,还讨论了在冲击试验期间标本的能量耗散规律。实验结果表明,动态弹性模量,样品强度和平均粒度随着F-T温度的降低而降低。 SEM结果表明,通过诱导冻结孔,互连的裂缝和孔簇,低F-T温度导致样品的内部损坏。此外,失败的样本的碎片形状表现出双锥体故障,单侧斜率故障,双侧斜率故障和分开故障。随着F-T温度的增加,能量耗散逐渐增加。本研究有助于防止地质灾害和优化寒冷地区的工程设计。

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