ISSN 1003-8035 CN 11-2852/P

    生物聚合物-格栅加筋边坡的动力特性与加固效果

    Dynamic Behavior and Reinforcement Effect of Biopolymer-Geogrid Reinforced Slopes

    • 摘要:
      目的 针对地震诱发的土质边坡失稳及滑坡等地质灾害问题,引入环境友好型生物聚合物黄原胶,构建了一种新型生物聚合物-格栅复合加筋单元,以期协同提升边坡的抗震性能与整体稳定性。
      方法 基于扩展的 Newmark 滑块分析原理,考虑黄原胶提供的额外化学胶结力以及界面摩擦修正因子,建立了地震荷载下边坡极限平衡转动控制微分方程,实现了地震诱发边坡转角与位移的解析求解。试验方面,制备黄原胶改良黏土并联合土工格栅构筑复合加筋单元,开展了5 组不同加筋长度及无筋、传统格栅加筋边坡的缩尺振动台模型试验,在逐级提升的激励振幅下,分析对比了坡体的加速度响应、坡顶沉降、水平位移及最终失稳破坏模式。
      结果 理论模型预测的坡顶沉降演化趋势与试验实测数据吻合较好;试验结果表明,地震动力作用下土体变形具有明显的高程效应,坡顶区域最易发生滑动。在 0.5 g 激励下,无加筋素坡的坡顶沉降高达 81 mm,且内部萌生了贯穿至坡脚的整体深层滑裂面;而采用 70 cm 新型生物聚合物-格栅复合加筋单元的边坡,其坡顶沉降降低至 16.23 mm(形变削弱达 74.07%~87.93%),且在边坡中段复杂应力区仍能保持接近 70% 的形变约束能力,加固性能优于传统格栅加筋边坡。
      结论 新型生物聚合物-格栅复合加筋单元具备协同约束与阻尼耗能双重抑震作用,能通过侧向框箍效应与多糖网络交联作用限制土颗粒滑移流动,抑制地震能量向上传递。该复合加筋体系可改变边坡的失稳演化路径,将纯土边坡的整体深层滑移转化为范围受控的后方深部变形,可为边坡抗震加筋土技术应用提供参考。

       

      Abstract:
      Objective To address geohazards such as earthquake-induced soil-slope instability and landslides, an environmentally friendly biopolymer, xanthan gum, was introduced to construct a new biopolymer-geogrid composite reinforcement unit with the aim of synergistically improving slope seismic performance and overall stability.
      Methods Based on the extended Newmark sliding-block analysis principle, and considering the additional chemical bonding provided by xanthan gum and the interface friction correction factor, a limit-equilibrium rotational-control differential equation for slopes under seismic loading was established. Analytical solutions for earthquake-induced slope rotation and displacement were obtained. Experimentally, xanthan-gum-improved clay was combined with geogrids to construct composite reinforcement units. Five groups of scaled shaking-table model tests with different reinforcement lengths, together with unreinforced slopes and conventional geogrid-reinforced slopes, were conducted. Acceleration response, crest settlement, horizontal displacement, and final instability modes were analyzed under stepwise increasing excitation amplitudes.
      Results The settlement evolution at the slope crest predicted by the theoretical model agrees well with the experimental measurements. The tests show that soil deformation under seismic loading has a clear elevation effect, and the slope-crest area is most prone to sliding. Under 0.5 g excitation, the crest settlement of the unreinforced slope reaches 81 mm, and an integral deep sliding surface extending to the slope toe develops internally. In contrast, for the slope reinforced with a 70 cm new biopolymer-geogrid composite unit, crest settlement decreases to 16.23 mm, corresponding to a deformation reduction of 74.07%-87.93%. The reinforced slope still maintains nearly 70% deformation-confinement capacity in the complex stress zone in the middle part of the slope, showing better reinforcement performance than the conventional geogrid-reinforced slope.
      Conclusion The new biopolymer-geogrid composite reinforcement unit provides both synergistic confinement and damping energy dissipation. Through lateral hoop confinement and polysaccharide-network crosslinking, it restricts soil-particle slip and flow and suppresses upward transfer of seismic energy. This composite reinforcement system can change the slope instability evolution path, transforming the overall deep sliding of an unreinforced soil slope into controlled rear deep deformation, and can provide a reference for seismic reinforcement of slopes.

       

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