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The inclination of the interslice resultant force in the limit equilibrium slope stability analysis

机译:基于极限平衡斜坡稳定性分析中的Interslice合金的倾斜度

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摘要

Currently, all of the semi-precise slice methods are developed based on the assumed relationships between interslice shear and normal forces (or interslice force directions). These assumed relationships lack theoretical basis, and reduce the accuracy of determination of the thrust force of sliding mass in the reinforced structure design. Therefore, a precise relationship of interslice forces is required. A functional relationship between the interslice force direction and influencing factors including the gradient of the sliding surface, the gradient of the slope surface and the shear strength of the sliding surface is deduced based on the Mohr-Coulomb failure criterion. Then, the deduced equation is employed to determine the interslice force directions and assess the stability of the Houzishi landslide, which is a case in the Three Gorges Reservoir area in China. The comparison among the inclinations of the interslice resultant force obtained by the numerical simulation, our derived equation and assumed values of other slice methods shows that our derived equation provides the best match with the simulation results. In addition, the safety factor of our method that incorporates the newly derived equation, is consistent with the precise slice method, further demonstrating the effectiveness of the equation. Therefore, the semi-precise slice method that incorporates the derived relationships of interslice forces provides a more reliable approach for estimating the thrust force in the design of reinforced constructions.
机译:目前,所有半精确切片方法都是基于划分剪切和常规力(或跨杆力方向)之间的假定关系而开发的。这些假设的关系缺乏理论基础,并降低了增强结构设计中滑动质量推力的测定的准确性。因此,需要确切的差距关系。基于MOHR-COULOMB失效标准,推导出斜面力方向和包括滑动表面梯度的影响因子之间的功能关系,倾斜表面的梯度和滑动表面的剪切强度。然后,采用推导的等式来确定跨越力方向并评估Houzishi Landslide的稳定性,这是中国三峡库区的案例。通过数值模拟获得的Interslice合并力的倾斜度的比较,我们的导出方程和其他切片方法的假设值表明,我们的导出方程提供了与模拟结果的最佳匹配。此外,我们结合新导出的方程的方法的安全系数与精确的切片方法一致,进一步展示了方程的有效性。因此,结合间隙力的衍生关系的半精确切片方法提供了更可靠的方法,用于估计增强结构的设计中的推力。

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