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Study of size effect in micro-extrusion process of pure copper

机译:纯铜微挤压过程中尺寸效应的研究

摘要

The size effect on material deformation behaviors are characterized by grain size, part feature size, forming material size and interfacial condition. These factors have a close relationship with material flow behavior, which in turn affects the geometry accuracy of micro-formed parts. In this study, a general-purpose tooling set for realization of micro-forward, backward, combined forward rod-backward can and double cup extrusions is developed and the micro-extrusions of pure copper with different grain sizes are conducted. The size effect phenomena are analyzed based on the deformation load, interfacial friction behavior and microstructure evolution. It is found that the interfacial friction is high in micro-extrusion processes and the grain size effect on deformation load is sensitive to the friction force at the tooling-workpiece interface. The microstructures of the extruded parts show the occurrence of inhomogenous deformation and a large number of slip bands passing through the grain boundaries to accomplish the strain continuity in the cases with coarse grains. In addition, the flow stress curves obtained from micro-compression are used to model the micro-extrusion processes using finite element (FE) simulation based on the conventional material model. It is found that the conventional material model is not applicable in simulation of the material deformation behavior and evaluation of the interfacial friction in micro-extrusion processes due to the size effect. This research therefore provides an in-depth understanding of size effect in micro-extrusion processes, which is critical to further formulate design rules to facilitate the development of micro-parts.
机译:尺寸对材料变形行为的影响以晶粒尺寸,零件特征尺寸,成形材料尺寸和界面条件为特征。这些因素与材料的流动行为有着密切的关系,进而影响了微成型零件的几何精度。在这项研究中,开发了一种用于实现微前进,后退,组合前进杆后退和双杯挤压的通用工具套件,并进行了具有不同晶粒尺寸的纯铜的微挤压。根据变形载荷,界面摩擦行为和微观组织演变分析了尺寸效应现象。发现在微挤压过程中界面摩擦很高,并且晶粒尺寸对变形载荷的影响对工具-工件界面处的摩擦力敏感。挤压零件的显微组织显示出不均匀变形的发生,并且大量的滑移带穿过晶界以实现粗晶粒情况下的应变连续性。另外,通过基于常规材料模型的有限元(FE)模拟,将从微压缩获得的流应力曲线用于对微挤压过程进行建模。发现传统的材料模型由于尺寸效应而不适用于材料变形行为的模拟和微挤压过程中界面摩擦的评估。因此,这项研究提供了对微挤压工艺中尺寸效应的深入了解,这对于进一步制定设计规则以促进微零件的开发至关重要。

著录项

  • 作者

    Chan WL; Fu MW; Yang B;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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