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Finite element simulation of the hot deformation behavior of AA7075 using a coupled thermo-mechanical crystal plasticity constitutive model

机译:AA7075使用耦合热机械晶体塑性本构模型的有限元模拟AA7075的热变形行为

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Three-dimensional crystal plasticity finite element (CPFE) simulations are performed to study the coupled thermo-mechanical response of aluminium alloy 7075 under hot compression loadings. To improve the computational efficiency, a grain-scale representative volume element model with periodic boundary conditions is adopted to represent the macroscopic response. The initial grains are created using Voronoi tessellation method, and the grain orientations are obtained from the electron back-scatter diffraction test. The simulated results indicate that the effects of the grain properties on the local deformation and temperature distribution of the alloy are significant during the hot deformation. The temperature continuity can be found across some grain boundaries while there is a temperature gap at other grain boundaries. The proposed coupled thermo-mechanical CPFE model is able to provide detailed microstructure evolution and temperature distribution in the studied alloy during the hot deformation, which cannot be easily obtained by experiments.
机译:进行三维晶体塑性有限元(CPFE)模拟,以研究热压缩载荷下铝合金7075的耦合热机械响应。为了提高计算效率,采用具有周期性边界条件的晶粒规模代表体积元素模型来表示宏观反应。使用Voronoi曲面细胞化方法产生初始晶粒,并且从电子背散射衍射试验获得晶粒取向。模拟结果表明,在热变形期间,谷物特性对合金的局部变形和温度分布的影响是显着的。在一些晶界中可以发现温度连续性,同时在其他晶界存在温度间隙。所提出的耦合热机械CPFE模型能够在热变形期间提供所研究合金中的详细的微观结构演化和温度分布,这不能通过实验轻松获得。

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