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Reduction of dynamic earth loads on flexible cantilever retaining walls by deformable geofoam panels

机译:通过可变形的土工泡沫板减少柔性悬臂挡土墙上的动土载荷

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The potential application of geofoam in reducing the dynamic earth forces on flexible cantilever earth retaining walls was investigated through small-scale physical model tests. Tests were carried out using a state-of-the-art laminar container and a uniaxial shaking table. Deformable geofoam panels of low stiffness made from expanded polystyrene (EPS) and extruded polystyrene (XPS) geofoam were utilized as compressible inclusions in the present study. The dynamic stress-strain properties of these geomaterials are discussed based on results from laboratory cyclic triaxial tests. Lateral dynamic earth pressures and wall displacements at different elevations, within the backfill were monitored during the application of various base excitations. The test results revealed that the presence of a deformable geofoain panel of low stiffness behind the flexible retaining wall will result in a reduction of the dynamic wall pressures and displacements. The geofoam efficiency in terms of load and displacement reduction decreases as the flexibility ratio of the model wall increases. On the other hand, load reduction efficiency of the geofoam increases as the amplitude and frequency ratio of the excitation increases. Load reduction efficiencies achieved in the tests were compared to those of the previous physical and numerical modeling studies available in the literature. Comparisons indicate that there is an agreement with the data presented in the previous modeling studies for low acceleration amplitudes and wall flexibility values, however, this agreement diminishes as wall flexibility begins to play role in reducing the earth pressures. Application point of the maximum dynamic thrust varies between 0.4 H to 0.6 H depending on the inclusion type, flexibility ratio of the wall and the characteristics of the harmonic motion applied to the base of the models.
机译:通过小规模的物理模型试验,研究了泡沫塑料在减小柔性悬臂式挡土墙上的动态土力方面的潜在应用。使用最新的层状容器和单轴振动台进行测试。由膨胀聚苯乙烯(EPS)和挤塑聚苯乙烯(XPS)土工泡沫制成的低刚度可变形土工泡沫板在本研究中用作可压缩夹杂物。基于实验室循环三轴试验的结果,讨论了这些土工材料的动态应力-应变特性。在应用各种基础激励过程中,对回填内不同高度的横向动态土压力和壁位移进行了监测。测试结果表明,在柔性挡土墙后面存在一个低刚度的可变形土工泡沫板,会降低动态墙的压力和位移。随着模型墙的挠性比的增加,在减少载荷和位移方面的土工泡沫效率会降低。另一方面,随着激发的振幅和频率比增加,土工泡沫的减荷效率增加。将测试中实现的减载效率与文献中先前进行的物理和数值建模研究的效率进行了比较。比较表明,与先前建模研究中提供的数据有关的是低加速度振幅和墙体柔韧性值,但是,随着墙体柔韧性开始在降低土压力中起作用,这种一致性逐渐减弱。最大动态推力的施加点在0.4 H至0.6 H之间变化,具体取决于夹杂物的类型,壁的柔韧性比以及应用于模型基础的谐波运动的特征。

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