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A dislocation-based constitutive description for modeling the behavior of FCC metals within wide ranges of strain rate and temperature

机译:基于位错的本构描述,用于在宽应变率和温度范围内对FCC金属的行为进行建模

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摘要

In this work a dislocation based constitutive description for modeling the thermo visco plastic behavior of FCC metals has been developed. The constitutive description, which is founded on the concepts of thermal activation analysis and dislocation dynamics, assumes the plastic flow additively decomposed into internal stress and effective stress. The internal stress represents the applied stress required for the transmission of plastic flow between the polycrystal grains and it is defined by the Hall Petch relationship. The effective stress formulation, which is the main innovative feature of this work, represents the thermally activated deformation behavior. This is defined taking into account the interrelationship between strain rate and temperature, and gathers structural evolution dependence. This structural evolution is described as a function of dislocations density, which acts as internal state variable in the material deformation behavior. A systematic procedure for identifica tion of the material parameters is developed and the model is applied to define the behav ior of annealed OFHC copper. The analytical predictions of the constitutive description are compared with the experimental data reported by Nemat Nasser and Li (Nemat Nasser, S., Li, Y., (1998). Flow stress of FCC polycrystals with application to OFHC Copper. Acta Mater. 46, 565 577). Good correlation between experiments and analytical predictions is found within wide ranges of strain rate and temperature.
机译:在这项工作中,已经建立了基于位错的本构描述,用于对FCC金属的热粘塑性行为进行建模。本构描述基于热活化分析和位错动力学的概念,假定塑性流加性分解为内部应力和有效应力。内应力表示在多晶粒之间传递塑性流所需的施加应力,它由霍尔Petch关系定义。有效应力公式是这项工作的主要创新特征,代表了热活化变形行为。考虑到应变速率和温度之间的相互关系进行定义,并收集结构演化相关性。这种结构演变被描述为位错密度的函数,位错密度在材料变形行为中充当内部状态变量。建立了确定材料参数的系统程序,并将该模型应用于定义退火后的OFHC铜的行为。本构描述的分析预测与Nemat Nasser和Li(Nemat Nasser,S.,Li,Y.,(1998)。FCC多晶体的流应力及其在OFHC Copper上的应用)报道的实验数据进行了比较。46 (565 577)。在很大的应变速率和温度范围内,发现实验与分析预测之间具有良好的相关性。

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