梯度冲击-静载次序下不同含水率泥岩压缩力学行为

    Compressive mechanical behavior of mudstone with different water contents under gradient impact-static loading sequence

    • 摘要: 针对矿山开采中泥岩常处于“水-动-静”复杂应力环境的现状,为揭示不同水环境下泥岩先爆破后承载的力学行为,针对不同含水率泥岩开展了静载和梯度冲击-静载次序单轴压缩试验,深入分析了不同梯度冲击损伤泥岩的压缩力学特性与破坏特征,阐明了不同含水率冲击预损伤泥岩的压缩力学特性及累积损伤演化规律。研究结果表明:泥岩的峰值强度和破坏形态受含水率影响较大,随含水率增大峰值强度出现大幅度损失,破坏形态由典型的脆性断裂逐渐转变为延性变形;随着梯度冲击次数的递增,试样内部微裂隙发生萌生、扩展与贯通的累积效应,导致预损伤泥岩的抗压强度减弱,应力跌落加剧,塑性变形显著增大,相较于干燥状态,饱和泥岩在冲击预损伤后强度降幅更显著、下降速度更快;在破坏模式演化方面,随冲击损伤程度的增加,干燥泥岩的破坏由劈裂破坏逐步转为剪切破坏,自然状态泥岩随损伤增加出现多条主裂隙,破坏形态由单一剪切渐变为近似锥形剪切,饱和泥岩则在竖向产生多条主裂隙及裂隙群,并伴随局部岩块剥落。这些结论定量刻画了水-冲击耦合作用下泥岩的强度劣化特征,揭示了水分是诱发泥岩动力损伤加速演化的关键诱因,相关成果可为深部含水泥岩工程动力灾害的风险评估及稳定性控制提供重要的理论支撑。

       

      Abstract: In view of the fact that mudstone in mining engineering is frequently situated in a complex “water-dynamic-static” stress environment, this paper aims to reveal the mechanical behavior of mudstone under the sequence of blasting impact followed by loading in diverse water environments. Specifically, static uniaxial compression tests and dynamic-static sequential loading tests are conducted on mudstone specimens with different water contents. The research provides an in-depth analysis of the compressive mechanical properties and failure characteristics of mudstone under different gradients of impact damage and elucidates the cumulative damage evolution laws of moisture-bearing mudstone subjected to impact pre-damage. The results indicate that the peak strength and failure morphology of mudstone are significantly influenced by water content. As the water content increases, a substantial loss in post-peak strength occurs, and the failure mode transitions from typical brittle fracture to ductile deformation. With an increasing number of gradient impacts, a cumulative effect of micro-crack initiation, propagation, and coalescence is observed within the specimens, leading to a reduction in the compressive strength of pre-damaged mudstone, intensified stress drops, and a marked increase in plastic deformation. Notably, compared to the dry state, saturated mudstone exhibits a more significant and rapid decline in strength following impact pre-damage. Regarding the evolution of failure modes, with the increase of impact damage, the failure of dry mudstone gradually shifts from splitting to shearing. Natural mudstone develops multiple main cracks as damage increases, with its failure morphology evolving from single shear to an approximately conical shear pattern. Saturated mudstone, however, generates multiple vertical main cracks and crack clusters, accompanied by localized rock spalling. These conclusions quantitatively characterize the strength degradation features of mudstone under the coupling effect of water and impact, revealing that moisture is the key factor inducing the accelerated evolution of dynamic damage. The research findings provide important theoretical support for the risk assessment and stability control of dynamic disasters in deep water-bearing mudstone engineering.

       

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