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Explicit stress integration of complex soil models

机译:复杂土模型的显式应力积分

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摘要

In this paper, two complex critical-state models are implemented in a displacement finite element code. The two models are used for structured clays and sands, and are characterized by multiple yield surfaces, plastic yielding within the yield surface, and complex kinematic and isotropic hardening laws. The consistent tangent operators-which lead to a quadratic convergence when used in a fully implicit algorithm-are difficult to derive or may even not exist. The stress integration scheme used in this paper is based on the explicit Euler method with automatic substepping and error control. This scheme employs the classical elastoplastic stiffness matrix and requires only the first derivatives of the yield function and plastic potential. This explicit scheme is used to integrate the two complex critical-state models-the sub/super-loading surfaces model (SSLSM) and the kinematic hardening structure model (KHSM). Various boundary-value problems are then analysed. The results for the two models are compared with each other, as well with those from standard Cam-clay models. Accuracy and efficiency of the scheme used for the complex models are also investigated.
机译:本文在位移有限元代码中实现了两个复杂的临界状态模型。这两个模型用于结构化粘土和砂土,其特征是具有多个屈服面,屈服面内的塑性屈服以及复杂的运动学和各向同性的硬化定律。一致的切线运算符(很难用于完全隐式算法中,导致二次收敛)很难导出甚至根本不存在。本文使用的应力积分方案基于具有自动子步距和误差控制的显式欧拉方法。该方案采用经典的弹塑性刚度矩阵,仅需要屈服函数和塑性势的一阶导数。该显式方案用于集成两个复杂的临界状态模型-子/超载荷表面模型(SSLSM)和运动硬化结构模型(KHSM)。然后分析了各种边值问题。将两个模型的结果以及标准Cam-clay模型的结果进行比较。还研究了用于复杂模型的方案的准确性和效率。

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