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Numerical simulation of cyclic behavior of ductile metals with a coupled damage-viscoplasticity model

机译:损伤-粘塑性耦合模型对延性金属循环行为的数值模拟

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摘要

In this paper, the evolution of ductile damage and the failure is investigated in the cyclic loading of ductile metals based on the rate-dependent elasto-viscoplastic damage model with the linear and nonlinear isotropic-kinematic hardening rules. The constitutive model is derived by introducing the damage variable, based on the plastic strain behavior, in both the elasto-plasticity and visco-plasticity frameworks. The cyclic behavior is modeled by using the visco-plasticity model since the rate-dependent behavior is observed experimentally for various metal alloys. In order to obtain a more realistic response in the compression zone, the crack closure effect is employed in the stress-strain constitutive relations. Finally, four different cases are studied numerically to assess the overall framework of the proposed constitutive model, including the fatigue behavior and lifetime assessment of AISI316L alloy, and the results are compared with available experimental data.
机译:本文基于具有线性和非线性各向同性运动硬化规则的速率相关的弹黏塑性损伤模型,研究了在延性金属循环载荷下延性损伤的演化和破坏。本构模型是通过在塑性弹塑性和粘弹塑性框架内基于塑性应变行为引入损伤变量而得出的。通过使用粘塑性模型对循环行为进行建模,因为对各种金属合金都观察到了速率依赖性行为。为了在压缩区域获得更真实的响应,在应力-应变本构关系中采用了裂纹闭合效应。最后,对四种不同情况进行了数值研究,以评估提出的本构模型的总体框架,包括AISI316L合金的疲劳行为和寿命评估,并将结果与​​可用的实验数据进行比较。

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