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A constitutive description of the thermo-viscoplastic behavior of body-centered cubic metals

机译:体心立方金属热粘塑性行为的本构描述

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摘要

The Johnson-Cook (J-C) equation, which is obtained from the phenomenological observations of experimental data at relatively low strain rates, cannot well describe the dynamic thermo-mechanical response of many materials at high strain rates, especially under the situations of high or low temperatures. This paper develops a new physics-based model for the constitutive description of BCC metals through a thermal activation analysis of the dislocation motion in the plastic deformation of crystalline materials with the use of the mechanical threshold stress (MTS) as an internal state variable. It was found that the new model can effectively reflect the plastic deformation mechanism of BCC crystals because it directly relates the macroscopic state variables in the constitutive model with the micromechanical characteristics of materials. The material parameters of the model are efficiently determined by an optimization method to guarantee that the material parameters are globally optimal in their theoretically allowed ranges. The application of the model to HSLA-65 steel and Tantalum shows that it is much easier to apply than the MTS model, that its flow stress predictions are better than the Rusinek and Klepaczko (R-K), Abed, Zerilli and Armstrong (Z-A) and J-C models, and that the present model predictions are in good agreement with the experimental data in a broad range of strain rate, temperature and strain.
机译:约翰逊库克(JC)方程是从相对低应变率的实验数据的现象学观察中获得的,它不能很好地描述高应变率时许多材料的动态热机械响应,特别是在高或低情况下温度。本文通过使用机械阈值应力(MTS)作为内部状态变量,通过对晶体材料塑性变形中位错运动的热活化分析,开发了一种新的基于物理的BCC金属模型模型。研究发现,新模型可以有效地反映BCC晶体的塑性变形机制,因为它直接将本构模型中的宏观状态变量与材料的微机械特性联系起来。通过优化方法可以有效地确定模型的材料参数,以确保材料参数在其理论允许范围内是全局最优的。该模型在HSLA-65钢和钽上的应用表明,它比MTS模型更容易应用,其流应力预测要优于Rusinek和Klepaczko(RK),Abed,Zerilli和Armstrong(ZA)和JC模型,并且当前模型的预测与大范围的应变速率,温度和应变下的实验数据非常吻合。

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  • 来源
    《Materials & design》 |2012年第4期|p.671-678|共8页
  • 作者单位

    Department of Mechanics, Zhejiang University, Hangzhou 310027, China,School of Mechanical and Manufacturing Engineering, The University of New South Wales, NSW 2052, Australia;

    Department of Mechanics, Zhejiang University, Hangzhou 310027, China;

    School of Mechanical and Manufacturing Engineering, The University of New South Wales, NSW 2052, Australia;

    Department of Mechanics, Zhejiang University, Hangzhou 310027, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    E. mechanical; F. constitution; F. plastic behavior;

    机译:E.机械;F.宪法;F.塑性行为;

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