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An implicit numerical scheme for cyclic elastoplasticity and ratcheting under plane stress conditions

机译:平面应力条件下循环弹塑性和棘轮的隐含数值方案

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摘要

The paper reports the development of an implicit numerical scheme for plane stress cyclic elasto-plasticity, capable of integrating a wide range of hardening rules, and simulating multi-axial ratcheting in metal structural components. Constitutive relations account for von Mises yielding in combination with mixed hardening. Emphasis is given to the kinematic hardening part, which is described with an advanced multiple back-stress model suitable for multi-axialmaterial ratcheting simulation. The constitutive equations are integrated implicitly, and the accuracy of the algorithm is assessed via iso-error maps. Two main novelties of the algorithm refer to the incremental update of the internal variables through the solution of a single scalar equation, and the explicit formulation of the consistent tangent moduli. The numerical scheme is implemented within the finite element environment as an external material subroutine, and its computational efficiency is demonstrated through the simulation of large-scale experiments on pipe elbows. Using the proposed computational framework, two kinematic hardening rules are employed to simulate the elbow response with emphasis on local strain amplitude and accumulation ("ratcheting"). The good comparison between numerical and experimental results demonstrates the computational efficiency of the numerical scheme and highlights some key issues concerning multi-axial ratcheting simulation. (C) 2021 Elsevier Ltd. All rights reserved.
机译:本文报告了平面应力循环弹性可塑性的隐式数值方案的开发,能够集成各种硬化规则,并在金属结构部件中模拟多轴棘轮。本构关系与混合硬化结合的von误差。重点给予运动学硬化部分,其用适用于多轴材料棘轮模拟的先进的多背应力模型描述。结构轴方程被含蓄地集成,并且通过ISO错误映射评估算法的准确性。算法的两个主要新奇是通过单个标量程方程的解决方案来提高内部变量的增量更新,以及一致的切线模数的显式配方。数值方案在有限元环境中实现为外部材料子程序,通过模拟管肘上的大规模实验来证明其计算效率。使用所提出的计算框架,采用两个运动硬化规则来模拟肘部响应,重点是局部应变幅度和累积(“棘轮”)。数值和实验结果之间的良好比较展示了数值方案的计算效率,并突出了关于多轴棘轮仿真的一些关键问题。 (c)2021 elestvier有限公司保留所有权利。

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