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Finite element simulation of influences of grain interaction on rolling textures of fcc metals

机译:晶粒相互作用对fcc金属轧制织构的影响的有限元模拟

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A rate dependent crystal plasticity constitutive model considering self and latent hardening in finite element analysis was developed to simulate rolling textures of pure aluminum. By changing the assignment of orientations to finite elements, i. e. assigning the same set of orientations to all elements or different orientations to different elements, the influences of grain interaction on the formation of rolling textures were numerically simulated with this kind of crystal plasticity finite element model. The simulation results reveal that the grains without considering grain interaction rotate faster than those considering grain interaction, and the rotation of grain boundary is slowed down due to the grain interaction. For a good simulation more elements should be assigned to one grain, in which the effects of both the boundary and interior parts of grain contribute to the formation of rolling textures.
机译:建立了基于速率和强度的晶体塑性本构模型,在有限元分析中考虑了自身和潜在的硬化,以模拟纯铝的轧制织构。通过改变方向对有限元的分配,即e。通过对所有元素分配相同的取向或对不同元素赋予不同的取向,利用这种晶体可塑性有限元模型,数值模拟了晶粒相互作用对轧制织构形成的影响。仿真结果表明,不考虑晶粒相互作用的晶粒的旋转速度比考虑晶粒相互作用的晶粒旋转的快,并且由于晶界相互作用,晶粒边界的旋转变慢。为了获得良好的模拟效果,应将更多元素分配给一个晶粒,其中晶粒边界和内部的影响都有助于形成滚动纹理。

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