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3D FINITE ELEMENT MODELING OF MOLYBDENUM EQUAL CHANNEL ANGULAR PRESSING

机译:三维有限元模型钼等通道角挤压

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Equal-channel angular pressing (ECAP) is a manufacturing process in which a material is subjected to a severe plastic shear strain with negligible change in the cross-sectional dimensions of the work-piece. Due to the severe plastic deformation, the ECAP process was investigated experimentally mainly on ductile materials such as Cu-99% and Al-4%Cu. Application of ECAP to harder metals (such as CP-Ti or Mo) imposes several problems due to the elevated temperature involved, cracks that may appear in the material and the large forces required. Furthermore, several cycles of the ECAP are required to obtain a uniform residual strain field in the workpiece. To optimize and gain scientific insight into the ECAP process of a Mo workpiece, a combined experimental - numerical investigation was conducted. A three dimensional finite element analysis (FEA) that simulates an ECAP BC4 process of hard metal at elevated temperature was performed. Both quantitative (final simulated geometry was compared to the shape of the workpiece after ECAP) qualitative (hardness and grain size were compared to effective-strain) methods were used for FE results validation.
机译:等通道角压(ECAP)是一种制造过程,其中将材料经受严重的塑料剪切菌株,并且在工件的横截面尺寸的横截面尺寸的变化可忽略的变化。由于塑性变形严重,主要在实验上研究了ECAP工艺,如Cu-99%和Al-4%Cu。 ECAP在更硬的金属(例如CP-Ti或Mo)由于所涉及的温度升高,材料中可能出现的裂缝和所需的大力而施加若干问题。此外,需要几个循环的ECAP循环来获得工件中的均匀残余应变场。为了优化和获得科学洞察莫工件的ECAP过程,进行了一个组合的实验 - 数值研究。进行三维有限元分析(FEA),用于在升高的温度下模拟硬质金属的ECAP BC4过程。定量(最终模拟几何体与ECAP后的工件形状进行比较)定性(硬度和晶粒尺寸与有效菌株)的方法用于Fe结果验证。

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