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基于3D打印再生岩体的锚固承载能力与机制分析

Bolted bearing capacity and mechanism analysis of regenerated rock mass based on 3D printing

  • 摘要: 再生岩体围岩与支护结构相互作用复杂,为明晰再生岩体锚固结构的承载机制,实现再生岩体巷道稳定控制,开展支护参数对再生岩体承载能力影响的研究。研究基于砂型3D打印技术,设计并制备了不同支护密度、排列的再生岩体锚固试样,对比分析了支护参数对试样的强化作用与匹配关系,结合理论分析探究了再生岩体锚固结构的承载机制。结果表明,随着锚杆数量增加,再生岩体的物理力学性能呈先增大后减小的规律;横向增加锚杆数量后,锚杆对再生岩体试样的强化作用不断减弱;提高支护密度有助于降低锚固体在受载过程中裂纹发育的程度与弹性应变能释放的能量,有助于降低声发射活跃性与应变带集中程度,抑制裂纹的萌生扩展。建立再生岩体顶、帮锚固结构稳定性安全系数判据,印证再生岩体锚固体的物理力学特性受锚杆密度显著影响,通过支护参数与再生岩体参数的相互校核并合理利用其特性,有助于更好实现再生岩体稳定控制与支护优化设计。

     

    Abstract: The interaction between regenerated rock mass and its support structure is complex. To clarify how bolted structures support regenerated rock mass,we investigated the effect of various support parameters on its bearing capacity. Using sand 3D printing technology,we designed and fabricated bolted specimens with different bolt densities and arrangements. We analyzed the reinforcing effects and relationships between support parameters,and examined the bearing mechanism of bolted structures through theoretical analysis. Results show that increasing the number of bolts initially improves the physical and mechanical properties of the regenerated rock mass,but excessive bolting can reduce these benefits. Lateral increases in bolt numbers gradually weaken reinforcement. Higher bolt density helps limit crack development and elastic strain energy release during loading, leading to reduced acoustic emission and lower strain concentration, which suppresses crack initiation and growth. We established a safety factor criterion for the stability of roof and rib bolting structures,confirming that bolt density significantly affects the properties of the bolted body. By coordinating support parameters with those of the regenerated rock mass and leveraging their characteristics,more stable control and optimized bolting design can be achieved.

     

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