论文标题

梯度结构材料的张力压缩行为的本构建模

Constitutive modeling of the tension-compression behavior of gradient structured materials

论文作者

Zhao, Jianfeng, Lu, Xiaochong, Liu, Jinling, Bao, Chen, Kang, Guozheng, Zaiser, Michael, Zhang, Xu

论文摘要

通过严重的塑性变形技术处理的梯度结构(GS)金属可以设计为同时达到高强度和高延展性。显着的运动硬化是其出色的应变硬化能力的关键,这会导致有利的强度牙能结合。不幸的是,尚未建立构成模型来模拟和分析GS金属的特征运动硬化行为,以了解其微观结构与宏观响应之间的关系。在这项工作中,我们开发了一个基于变形的机械性菌株梯度可塑性模型,考虑了从谷物到样品量表的可塑性异质性。建立了一个反应模型,该模型解释了位错堆积对晶粒尺寸的依赖性,以描述GS材料的环状变形特性。已建立的模型统一了适应内部可塑性异质性的几何必要位错,后部应力和可逆位位置在反向载荷中,而无需引入过多的独立材料参数,而无需引入过多的菌株梯度可塑性框架。该模型的有限元实现方法可以预测GS铜棒的单轴拉伸和拉伸压缩响应以及具有均匀晶粒尺寸的参考样品。发现GS铜表现出增强的运动学硬化,这主要来自GS层中的细晶粒,并有助于GS材料的相当延性。该模型允许研究机械响应,并优化具有各种类型的空间异质晶粒微观结构的材料的性能。

Gradient structured (GS) metals processed by severe plastic deformation techniques can be designed to achieve simultaneously high strength and high ductility. Significant kinematic hardening is key to their excellent strain hardening capacity which results in a favorable strength-ductility combination. Unfortunately, no constitutive model has been established to simulate and analyze the characteristic kinematic hardening behavior of GS metal to understand the relationship between their microstructure and macroscopic response. In this work, we developed a deformation-mechanismbased strain gradient plasticity model considering the plasticity heterogeneities from the grain to the sample scale. A back stress model, which accounts for the dependency of dislocation pile-ups on grain size, is established to describe the cyclic deformation properties of GS materials. The established model unified the geometrically necessary dislocations accommodating internal plasticity heterogeneities, the resulting back stress and reversible dislocations during reverse loading into a strain gradient plasticity framework, without introducing excessive numbers of independent material parameters. A finite element implementation of the model quantitatively predicts the uniaxial tensile and tensile-compressive responses of a GS copper bar as well as of a reference sample with homogeneous grain size. It is found that GS copper exhibits enhanced kinematic hardening which results mainly from fine grains in the GS layer and contributes to the considerable ductility of the GS material. The model allows to investigate the mechanical response and optimize the properties of materials with various types of spatially heterogeneous grain microstructures.

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