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Study on the Influence of Temperature on the Surface Asperity in Micro Cross Wedge Rolling

机译:温度对微交叉楔形轧制表面粗糙度的影响研究

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When the common deformation processes are scaled down to micro/meso dimensions, size effect is the particular phenomena in microforming, which is related to the dominant influence of single grains inside the micropart. The conventional cross wedge rolling (CWR) is introduced into the micro scale in order to take the advantages of CWR. The micro cross wedge rolling (MCWR) has to confront with the phenomena of size effect that occurs in the common microforming processes inevitably. One of the approaches to compensate size effect is to increase the deforming temperature. An increased formability is achieved because more slip systems of polycrystal metal are activated at the elevated temperature. This reduces the anisotropic material behavior resulting in a more homogeneous forming with improved reproducibility. In this study, a YAG laser beam is applied to heat the workpiece. Finite element model (FEM) associated with a material constitutive formulation considering dislocation mechanics is set up to simulate the MCWR of pure copper utilizing the laser heating. The surface asperity as an indication of material heterogeneity in micro scale is quantitatively analysed. The simulation results show a good agreement with experimental results in terms of the surface asperity.
机译:当常见的变形过程被缩小到微/间隔尺寸时,尺寸效应是微铸件中的特定现象,这与微粉内的单粒颗粒的显着影响有关。将传统的交叉楔形轧制(CWR)引入微尺度以便采用CWR的优点。微交叉楔形滚动(MCWR)必须面对尺寸效应的现象,其在普通的微型过程中不可避免地发生。补偿尺寸效应的方法之一是增加变形温度。实现了较高的可成形性,因为在升高的温度下激活了多晶金属的更多滑移系统。这降低了各向异性材料行为,导致更均匀的成形,具有改善的再现性。在该研究中,施加YAG激光束以加热工件。考虑位错力学的材料本构制品相关的有限元模型(FEM)被设置为利用激光加热模拟纯铜的MCWR。定量分析了作为微观材料中材料异质性的指示的表面粗糙。仿真结果表明,与表面粗糙的实验结果表明良好的一致性。

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