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首页> 外文期刊>Rock Mechanics and Rock Engineering >Effects of Acoustic Emission and Energy Evolution of Rock Specimens Under the Uniaxial Cyclic Loading and Unloading Compression
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Effects of Acoustic Emission and Energy Evolution of Rock Specimens Under the Uniaxial Cyclic Loading and Unloading Compression

机译:单轴循环载荷下岩石标本声发射和能量演化的影响,卸载压缩

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摘要

Characteristics of energy accumulation, evolution, and dissipation in uniaxial cyclic loading and unloading compression of 30 sandstone rock specimens under six different loading rates were explored. Stress-strain relations and acoustic emission characteristics of the deformation and failure of rock specimens were analyzed. The densities and rates of stored energy, elastic energy, and dissipated energy under different loading rates were confirmed, and an effective approach for the equivalent energy surface was presented. The energy evolution of rock deformation and failure were revealed. It turns out that the rock deformation behavior under uniaxial cyclic loading and unloading compression remained almost unchanged compared with that of uniaxial compression. The degree of match between reloading stress-strain curves and previous unloading curves was high, thereby demonstrating the memory function of rock masses. The intensity of acoustic emission fluctuated continually during the entire cyclic process. Emissions significantly increased as the stress exceeded the unloading level. The peak of acoustic emission increased with increasing loading stress level. Relationships between energy density and axial load indicate that the rock mass possesses a certain energy storage limitation. The energy evolution of rock masses is closely related to the axial loading stress, rather than to the axial loading rate. With increasing axial loading stress, stored energy varied most rapidly, followed by that of the elastic energy, then dissipated energy. Energy accumulation dominates prior to the axial load reaching peak strength; thereafter, energy dissipation becomes dominant. The input energy causes the irreversible initiation and extension of microcracks in the rock body. Elastic energy release leads to sudden instability of rock bodies and drives rock damage.
机译:探讨了在六种不同装载率下的单轴循环载荷和卸载压缩中的能量积累,进化和耗散的特点。分析了岩石标本变形和失效的应力 - 应变关系和声发射特性。确认了储存能量,弹性能量和耗散能量的密度和速率,并提出了一种有效的能量表面的方法。揭示了岩石变形和失败的能量演变。事实证明,与单轴压缩相比,单轴循环载荷和卸载压缩下的岩石变形行为几乎保持不变。重新加载应力 - 应变曲线和先前卸载曲线之间的匹配度高,从而展示了岩体的记忆功能。在整个循环过程中,声发射的强度不断地波动。由于压力超过卸载水平,排放显着增加。随着负载应力水平的增加,声发射的峰值增加。能量密度和轴向载荷之间的关系表明岩体具有一定的能量储存限制。岩体的能量演化与轴向负载应力密切相关,而不是轴向加载速率。随着轴向加载应力的增加,储存能量最快地变化,其次是弹性能量,然后耗散能量。能量积聚在轴向载荷达到峰强度之前主导;此后,能量耗散变得优势。输入能量导致岩体中微裂纹的不可逆启动和延伸。弹性能量释放导致岩石体的突然不稳定性,驱动岩石损伤。

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