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Active lateral earth pressure of geosynthetic-reinforced retaining walls with inherently anisotropic frictional backfills subjected to strip footing loading

机译:具有固有的各向异性摩擦回填的土工合成加强挡土墙的主动横向接地压力经受带状载荷

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摘要

In this paper, a detailed numerical study is conducted to evaluate the lateral earth pressure acting on geosynthetic-reinforced retaining walls with an anisotropic granular backfill subjected to strip footing loadings. To this end, the well-established lower bound theory of limit analysis coupled with the robust second order cone programming (SOCP) and the finite element discretization method is exploited and implemented in the stability analysis of reinforced retaining structures. For the finite element limit analysis, a number of constraints associated with the lower-bound axioms are satisfied, including element equilibrium, discontinuity equilibrium, boundary conditions and the yield criterion enforcement. By adopting second-order cone programming (SOCP) optimization, the nonlinear Mohr-coulomb failure criterion is simulated using three nodal auxiliary variables defined as functions of nodal stresses generated at each point. In addition, the primal-dual interior-point algorithm is adopted to gain the optimal solution for the unknown stress variables in the SOCP optimization problem. Accordingly, the contribution of soil inherent anisotropy to the influence of a number of parameters on the lateral earth pressure is thoroughly examined. It was observed that as the anisotropy ratio increases (the horizontal friction angle decreases) and the number of reinforcement layers decreases, the coefficient of active earth pressure increases in all cases of geosynthetic-reinforced retaining structure. Decreasing the number of reinforcement layers in the retained backfill will be translated into an equivalent softened material; hence, increasing the active earth pressure coefficient. In addition, the increase in the anisotropy ratio leads to the overall decrease in the shear strength of the backfill soil, causing the retaining structure to reach the limit state earlier at smaller displacements, thus giving rise to the increase in the coefficient of active lateral earth pressure. The rate of increase in the coefficient of active earth pressure with anisotropy ratio grows with the increase in the foundation width and load intensity and the decrease in the foundation-wall distance.
机译:在本文中,进行了详细的数值研究,以评估作用在地磁增强挡土墙上的横向接地压力,其各向异性粒状回填件进行带材载荷。为此,利用了与稳健的二阶锥形编程(SOCP)耦合的限制分析的良好限制分析理论和有限元离散化方法,并在增强保留结构的稳定性分析中实现。对于有限元限制分析,满足与较小界公理相关的许多约束,包括元素平衡,不连续性平衡,边界条件和产量标准实施。通过采用二阶锥编程(SOCP)优化,使用三个节点辅助变量模拟非线性MoHR-Coulomb失败标准,其定义为在每个点处产生的节点应力的功能。此外,采用了原始 - 双内点算法来获得SOCP优化问题中未知应力变量的最佳解决方案。因此,彻底检查了土壤固有各向异性对横向接地压力的许多参数的影响的贡献。观察到,随着各向异性率的增加(水平摩擦角度降低)和加强层的数量降低,在根系加强结构的所有情况下,主动接地压力的系数增加。减小保留回填中的加强层的数量将被转换成等效的软化材料;因此,增加了有源地下压力系数。此外,各向异性率的增加导致回填土的剪切强度的总体降低,导致保持结构在较小的位移中以更小的位移到达极限状态,从而产生了活性横向地球系数的增加压力。具有各向异性率的主动接地压力系数增加速率随着基础宽度和负载强度的增加而增大以及基础壁距离的减小。

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