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Prediction of soil stress-strain response incorporates mobilised shear strength envelope of granitic residual soil

机译:土壤应力 - 应变反应的预测包括花岗岩残留土壤的动员剪切强度包络

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The concept of effective stress has been the principal concept in characterizing soil volume change behavior in soil mechanics, the settlement models developed using this concept have been empirical in nature. However, there remain certain unexplained soil volume change behaviors that cannot be explained using the effective stress concept, one such behaviour is the inundation settlement. Studies have begun to indicate the inevitable role of shear strength as a critical element to be incorporated in models to unravel the unexplained soil behaviours. One soil volume change model that applies the concept of effective stress and the shear strength interaction is the Rotational Multiple Yield Surface Framework (RMYSF) model. This model has been developed from the soil-strain behavior under anisotropic stress condition. Hence, the RMYSF actually measure the soil actual elasto-plastic response to stress rather than assuming it to be fully elastic or plastic as normally perceived by the industry. The frameworks measures the increase in the mobilize shear strength when the soil undergo anisotropic settlement.
机译:有效压力的概念是在土壤力学中表征土壤体积变化行为的主要概念,使用这一概念开发的结算模型本质上是经验的。然而,仍然存在一些无法解释的土壤体积变化行为,无法使用有效的压力概念来解释,其中一种行为是泛滥解决方案。研究已经开始表明剪切强度作为临界元素的不可避免的作用,以纳入模型中,以解开未解释的土壤行为。一种土壤体积变化模型,适用有效应力的概念和剪切强度相互作用是旋转多屈服表面框架(RMYSF)模型。该模型已从各向异性应力条件下的土壤应变行为开发。因此,RMYSF实际上测量土壤实际弹塑性响应应力,而不是假设它是完全弹性或塑料,通常被行业所感知。当土壤遭受各向异性沉降时,框架测量动员剪切强度的增加。

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