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Undrained cyclic behavior of granular materials considering initial static shear effect:Insights from discrete element modeling

机译:考虑初始静态剪切效果的粒状材料的未染色循环行为:离散元素建模的见解

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In-situ soil deposits often have an initial shear stress that significantly affects their subsequent cyclic behavior and liquefaction susceptibility. This is closely related to the internal structure of the soil but is very difficult to study thoroughly through conventional laboratory tests. In this study, a numerical procedure that can impose arbitrary two-dimensional stress or strain paths was developed using the discrete element method (DEM); this procedure was then used in simulations to investigate the behavior of granular polygonal samples under an undrained cyclic simple shear with various densities and stress conditions. Two types of cyclic responses could be identified from the simulation results: ?cyclic liquefaction? and ?residual deformation failure.? It was found that the initial static shear could either enhance or weaken the cyclic resistance of sand to liquefaction failure, depending on the extent of the shear stress reversal. The internal structure of the granular materials was quantified using a contact-normal-based fabric tensor that could describe their load-bearing characteristics in response to the external applied stress. The norm and principal direction of the fabric tensor both exhibited drastically different evolution patterns under varying loading conditions. This can provide further insights into the underlying failure mechanism of granular soils.
机译:原位土壤沉积物通常具有初始剪切应力,显着影响其随后的循环行为和液化易感性。这与土壤的内部结构密切相关,但很难通过传统的实验室测试彻底习惯。在该研究中,使用离散元件方法(DEM)开发了一种可以施加任意二维应力或应变路径的数值过程;然后用于模拟该过程以研究颗粒多边形样品在具有各种密度和应力条件下的颗粒多边形样品的行为。可以从仿真结果中识别出两种类型的循环响应:?循环液化?和?残留变形失败。?发现初始静态剪切可以增强或削弱砂与液化失效的循环电阻,具体取决于剪切应力反转的程度。使用基于接触正常的织物张量来定量粒状材料的内部结构,其可以响应于外部施加的应力来描述其承载特性。织物张量的规范和主要方向都在不同的负载条件下表现出急剧不同的进化模式。这可以提供进一步的见解粒状土壤的潜在失效机制。

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