材料科学
挤压
晶体孪晶
打滑(空气动力学)
晶体塑性
镁合金
有限元法
可塑性
纹理(宇宙学)
边值问题
冶金
变形机理
复合材料
合金
机械
结构工程
热力学
数学
计算机科学
数学分析
工程类
人工智能
微观结构
物理
图像(数学)
作者
Tsuyoshi MAYAMA,Masafumi Noda,Ryoichi Chiba,Mitsutoshi Kuroda
标识
DOI:10.1016/j.ijplas.2011.02.007
摘要
The texture development mechanism during the extrusion of magnesium alloy is investigated by experimental observation and numerical analysis. First, we perform a finite element analysis of a full extrusion process using a phenomenological constitutive equation, and it is confirmed that the loading condition of the extrusion process near the central axis of the billet is approximated by an equi-biaxial compression mode. Then, the equi-biaxial compression problem is adopted as a simplified boundary value problem to be solved using a crystal plasticity model to clarify the detailed texture development mechanism during the extrusion process. The crystal plasticity analysis of equi-biaxial compression successfully reproduces the texture development from an initial random texture to the final experimentally observed texture. The effects of the deformation modes (i.e. slip and twinning systems) implemented in the calculation and the reference stress ratio of basal to nonbasal slip systems on texture development are studied in detail. Finally, the mechanism of texture development during the extrusion process is discussed in terms of the lattice rotation caused by the activated slip systems.
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