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首页> 外文期刊>International journal of geomechanics >Ultimate Bearing Capacity of Rigid Footing on Two-Layered Soils of Sand-Clay
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Ultimate Bearing Capacity of Rigid Footing on Two-Layered Soils of Sand-Clay

机译:刚性基于砂砾两层土壤刚性轴承的终极承载力

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This study widely investigates the ultimate bearing capacity of a rigid footing on the free surface of sand overlying clay using the rigid-plastic finite-element method (RPFEM). Interface elements were introduced with the new constitutive equations developed by the authors to properly evaluate the interaction between the footing and the soil because these elements greatly affect the failure mechanism of the footing-soil system. Two friction conditions were employed for the footing surface, namely, the perfectly rough condition and the perfectly smooth condition. The RPFEM was extended to calculate the distribution of contact normal stress along the footing base corresponding to changes in the thickness of the sand layer. Several design charts were developed to directly determine the ultimate bearing capacity by increasing the internal friction angle, the thickness of the sand layer, and the shear strength of the clay layer. Two cases were considered for the clay layer below the sand layer, namely, a weak layer and a stiff layer. The failure mode of two-layered soils was found to change from the general shear mode to the punching shear mode for both friction conditions by a reduction in the shear strength of the clay layer. The sheared area of the ground was limited to the sand layer in the general shear mode, while the sheared area was distributed throughout the two layers in the punching shear mode. New bearing capacity formulas during the punching shear mode were proposed for the two friction conditions in a wide range of strength and geometric parameters, which were in close agreement with the experimental studies and are efficient enough to be used in practice.
机译:本研究通过刚性塑料有限元方法(RPFEM)广泛地研究了刚性覆盖粘土自由表面的最终承载能力。通过作者开发的新构成方程介绍了界面元素,以适当地评估脚踏和土壤之间的相互作用,因为这些元素大大影响了基地系统的失效机制。使用两个摩擦条件用于脚表面,即完美粗糙的条件和完全平滑的条件。延伸RPFEM以计算与砂层厚度变化相对应的脚踏底座的接触正常应力的分布。开发了几种设计图表通过增加内部摩擦角,砂层的厚度和粘土层的剪切强度来直接确定最终承载能力。在砂层下方的粘土层考虑两种情况,即弱层和刚性层。发现两层土壤的故障模式通过粘土层的剪切强度的降低来从一般剪切模式从一般剪切模式改变到冲压剪切模式。地面的剪切区域限于通式剪切模式中的砂层,而剪切区域在冲压剪切模式下在整个两层中分布。在各种强度和几何参数中提出了冲压剪切模式期间的新承载能力公式,这与实验研究密切一致,并且在实践中有效。

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