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真三轴动静组合加载下非均质花岗岩损伤特性与能量演化机制研究

Damage characteristics and energy evolution mechanism of heterogeneous granite under true triaxial dynamic and static loading

  • 摘要: 为了研究三向应力约束下非均质花岗岩的动态力学特性及能量演化行为, 采用真三轴Hopkinson装置开展了多云母类和岩脉类花岗岩的动静组合荷载循环加载试验, 并结合FLAC3D−PFC3D耦合建模分析方法, 分析了三向应力约束与高应变率对非均质花岗岩动态裂纹扩展及能量演化机制的影响。研究结果表明: ①在循环动态加载过程中, 花岗岩内部裂缝网络的连通性逐渐增强, 最终形成与最小主应力方向近似平行的高密集宏观剪切裂纹网络, 岩脉类试样抗冲击能力较多云母类试样明显更低; ②增大轴向应力导致晶间拉伸裂纹比例增大, 促使起裂应力比(σci/σd)和损伤应力阈值比(σcd/σd)降低, 起裂应力和损伤应力阈值发生时间提前, 并显著削弱了试样的动态强度; ③侧向应力约束提高了试样动态损伤应力阈值, 延缓了起裂应力发生时间, 抑制了颗粒间相对滑移的摩擦作用, 减弱了破坏过程中动能的释放, 并对试样的动态强度表现出强化效应; ④在真三轴应力约束下, 冲击加载主要贡献于滑移摩擦能的耗散, 而动能始终保持在相对较低的水平。

     

    Abstract: To investigate the dynamic mechanical properties and energy evolution behavior of heterogeneous granite under triaxial stress condition, combined dynamic-static loading cyclic tests were conducted on muscovite and vein-type granites using a true triaxial Hopkinson apparatus. Using the couploed FLAC3D−PFC3D coupling modeling, the effects of triaxial stress constraints and high strain rates on the dynamic crack propagation and energy evolution mechanisms of heterogeneous granite were investigated. The results show that during the cyclic dynamic loading process, the connectivity of the internal crack network in granite gradually increases, ultimately forming a highly dense macroscopic shear fracture network parallel to the direction of the minimum principal stress, with the dike specimens showing significantly lower impact resistance. Increasing axial stress raises the proportion of intergranular tensile cracks. This in turn reduces the crack initiation stress ratio (σci/σd) and the damage threshold stress ratio (σcd/σd), achieving crack initiation stress and damage stress threshold earlier, and significantly weakening the dynamic strength of the samples. Lateral stress confinement increases the dynamic damage stress threshold of the samples, delays the timing of its occurrence, suppresses the frictional sliding of particles, reduces the release of destructive kinetic energy, and shows a strengthening effect on the dynamic strength of the samples. Under the true triaxial stress confinement, the impact loading mainly contributes to the dissipation of sliding friction energy, while the kinetic energy remains at relatively low levels throughout the process.

     

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