ISSN 1003-8035 CN 11-2852/P

    考虑桩-土耦合作用的钢管抗滑桩应急抢险支挡结构加固机理研究

    Reinforcement Mechanism of Emergency Retaining Structures with Steel-Pipe Anti-Slide Piles Considering Pile-Soil Coupling

    • 摘要:
      目的 鉴于传统钢筋混凝土抗滑桩在支挡结构中存在施工安全风险高、工期较长及工程造价较高等局限性,本文提出了一种基于钢管抗滑桩的新型应急支挡结构体系,系统研究其在桩-土耦合作用下的加固机理。
      方法 通过构建桩-土界面本构模型,并结合有限元数值模拟,建立了适用于甘肃省典型土岩地层的物理力学模型,分析岩土体参数、嵌固深度、桩间距、布设形式等因素对钢管抗滑桩内力与变形的影响规律。
      结果 研究结果表明,对于单排钢管抗滑桩,土层中其抗弯承载力为主要控制指标,桩端多出现负向位移,可按自由端考虑,最优嵌固深度宜大于桩长的2/5~1/2;岩层中则以抗剪承载力为控制指标,桩端可按简支或固定端考虑,最优嵌固深度宜大于桩长的1/3~2/5。对于双排钢管抗滑桩,随着桩间距增大,前排桩的最大正弯矩逐渐减小,而后排桩的最大负弯矩则逐渐增大。总体而言,群桩钢管抗滑桩体系的位移控制效果优于单排桩,其中门架式双排桩对后排桩最大正、负弯矩具有更好的控制效果,而群桩体系对前排桩的弯矩控制更为显著。
      结论 基于上述研究成果,本文揭示了钢管抗滑桩在桩-土耦合作用下的内力重分布与位移协同演化机制,提出了基于破坏模式识别的位移-弯矩双控设计准则,阐明了桩间距变化引发的“群桩效应-土拱效应”竞争机制。该研究可为钢管抗滑桩支挡结构,特别是在应急抢险工程中的优化设计与施工提供理论依据。

       

      Abstract: Traditional reinforced-concrete anti-slide piles used for slope support involve high construction safety risks, long construction periods, and high costs. To address these limitations, this study proposes a new emergency slope-support system based on steel-pipe anti-slide piles and investigates its reinforcement mechanism under pile-soil interaction. A constitutive model for the pile-soil interface was developed, and finite-element numerical simulations were carried out to establish a physical-mechanical model representative of typical soil-rock strata in Gansu Province. The effects of soil-rock parameters, embedment depth, pile spacing, and arrangement pattern on the internal force and deformation of steel-pipe anti-slide piles were analyzed. The results indicate that, for single-row steel-pipe anti-slide piles in soil layers, flexural resistance is the primary controlling factor. The pile ends show negative displacement and can be treated as free ends, and the optimal embedment depth is greater than 2/5~1/2 of the pile length. In rock layers, shear resistance becomes the controlling factor, and the pile ends behave as simply supported or fixed ends; the optimal embedment depth exceeds 1/3~2/5 of the pile length. For double-row piles, as pile spacing increases, the maximum positive bending moment of the front-row piles decreases, whereas the maximum negative bending moment of the rear-row piles increases. Overall, the displacement-control performance of the pile-group system is superior to that of single-row piles. Portal-type double-row piles provide better control of the maximum positive and negative bending moments of the rear-row piles, whereas the pile-group system has a more significant control effect on the bending moments of the front-row piles. This study further reveals the internal-force redistribution mechanism and synergistic displacement evolution of steel-pipe anti-slide piles under pile-soil coupling and proposes a dual-control design criterion for displacement and bending moment based on failure-mode identification. The competition mechanism between the pile-group effect and the soil-arching effect induced by changes in pile spacing is also clarified. These findings provide a theoretical basis for optimized design and construction of steel-pipe anti-slide-pile retaining structures, particularly in emergency rescue projects.

       

    /

    返回文章
    返回