水射流联合刀齿冲击非均质受载岩石的破损特征及能量演化规律

Damage characteristics and energy evolution of heterogeneous loaded rocks under the combined action of water jet and cutter tooth impact

  • 摘要: 为研究深部复杂地层高应力环境下水射流联合刀齿破碎非均质岩石的效率及机理,基于光滑粒子流体动力学−有限元方法,以含石英、长石、方解石3种组分的砂岩为研究对象建立数值计算模型,研究了单齿单独破碎均质岩石、单齿单独破碎非均质岩石、水射流联合单齿异轨迹破碎非均质岩石、水射流联合单齿同轨迹破碎非均质岩石4种破碎方式下,非均质岩石的损伤破坏特征及时效特性,分析了受载岩石的破损能量演化规律,揭示了水射流联合刀齿冲击非均质岩石的损伤破坏机理。研究结果表明:水射流联合单齿破碎非均质岩石时,低强度组分与组分界面处将形成损伤脆弱区,且在应力集中作用下易导致主裂缝萌生及扩展,形成大范围重度损伤区;水射流联合单齿异轨迹和同轨迹破碎方式分别在破岩宽度和深度方面具有优势,从岩石破碎面积整体效果出发,水射流联合单齿异轨迹破碎方式较好;在水射流联合刀齿冲击作用下,非均质受载岩石破损能量变化以内能为主,其最大值出现时刻早于动能最大值出现时刻,高强度组分对其内能累积具有促进作用;非均质受载岩石的初始损伤主要由压剪应力导致,随后在压剪应力为主、拉应力为辅及应力集中效应的综合作用下发生瞬时断裂破坏。

     

    Abstract: To investigate the efficiency and mechanism of breaking heterogeneous rocks using a combined water jet and cutter tooth under high-stress conditions in deep complex formations, a numerical model was established based on the smoothed particle hydrodynamics-finite element method, taking sandstone composed of quartz, feldspar, and calcite as the research object. Four rock-breaking modes were studied: single-tooth breaking of homogeneous rock, single-tooth breaking of heterogeneous rock, water jet combined with single-tooth breaking of heterogeneous rock along different trajectories, and along identical trajectories. The damage and time-dependent characteristics of heterogeneous rocks were analyzed, and the evolution pattern of damage energy in loaded rock was examined to reveal the damage mechanism of heterogeneous rocks under the combined impact of water jet and cutter tooth. The results showed that when heterogeneous rocks were broken by the combined action of water jet and single cutter, damage-prone zones formed in low-strength components and at component interfaces, which tended to induce the initiation and propagation of main cracks under stress concentration, resulting in large-scale severe damage zones. The rock-breaking modes along different and identical trajectories showed respective advantages in rock-breaking width and depth. From the perspective of overall rock-breaking area, the different trajectory mode was superior. Under the combined action of water jet and cutter tooth, the damage energy variation of the heterogeneous loaded rock was mainly in the form of internal energy, whose peak occurred earlier than that of kinetic energy. High-strength components facilitated internal energy accumulation. The initial damage of heterogeneous loaded rock was mainly caused by compressive-shear stress, followed by instantaneous damage under the combined effects of dominant compressive-shear stress, auxiliary tensile stress, and stress concentration.

     

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