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首页> 外文期刊>International Journal of Plasticity >Thermo-mechanically coupled cyclic elasto-viscoplastic constitutive model of metals: Theory and application
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Thermo-mechanically coupled cyclic elasto-viscoplastic constitutive model of metals: Theory and application

机译:金属的热力耦合循环弹黏塑性本构模型:理论与应用

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Thermo-mechanically coupled cyclic deformations often occur in metallic components subjected to cyclic loading. A framework of thermo-mechanically coupled elasto-plasticity (including rate-independent or rate-dependent plasticity) is first presented in this work based on the thermodynamic laws and logarithmic stress rate. Then, a specific thermomechanically coupled elasto-viscoplastic constitutive model is constructed from the framework to describe the thermo-mechanically coupled cyclic deformation of 316L stainless steel by using combined nonlinear isotropic and kinematic hardening rules and considering the internal thermal production. The nonlinear kinematic hardening rule is extended from that originally proposed by Abdel-Karim and Ohno (2000) and Ohno and Abdel-Karim (2000) for small deformation; and a cyclic hardening-softening-hardening feature observed in the cyclic test of the steel is reflected by using a nonlinear isotropic hardening rule consisting of several component equations. The strain amplitude dependence of cyclic hardening is considered by introducing a memory surface of plastic strain proposed by Chaboche et al. (1979), and the additional hardening effect caused by the non proportional multiaxial cyclic loading path is involved by using the non-proportionality parameter defined by Tanaka (1994). Furthermore, the proposed constitutive model is implemented into a finite element code (e.g., ABAQUS) by combining the user subroutines UMAT and UMATHT. Finally, the proposed model is verified by comparing the predictions with the experimental results of 316L stainless steel. It is shown that the predictions agree well with the corresponding experimental ones. (c) 2015 Elsevier Ltd. All rights reserved.
机译:热机械耦合的循环变形经常发生在承受循环载荷的金属部件中。在这项工作中,首先基于热力学定律和对数应力率,提出了一个热机械耦合的弹塑性(包括速率无关或速率相关塑性)框架。然后,从框架中构造了一个特定的热机械耦合弹黏塑性本构模型,以结合非线性各向同性和运动学硬化规则并考虑内部热量产生来描述316L不锈钢的热机械耦合循环变形。非线性运动硬化规则是由Abdel-Karim和Ohno(2000)以及Ohno和Abdel-Karim(2000)最初提出的小变形扩展而来的。通过使用由几个组成方程组成的非线性各向同性硬化规则,反映了钢在循环试验中观察到的循环硬化-软化-硬化特征。通过引入Chaboche等人提出的塑性应变的存储表面,可以考虑循环硬化的应变幅度依赖性。 (1979年),并通过使用田中(1994年)定义的非比例参数,涉及由非比例多轴循环加载路径引起的附加硬化效果。此外,通过结合用户子例程UMAT和UMATHT,将所提出的本构模型实现为有限元代码(例如ABAQUS)。最后,通过将预测结果与316L不锈钢的实验结果进行比较,验证了所提出的模型。结果表明,预测结果与相应的实验结果吻合良好。 (c)2015 Elsevier Ltd.保留所有权利。

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