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Experimental and simulation based study on micro-scaled sheet metal deformation behavior in microembossing process

机译:基于实验和仿真的微压花过程中薄板钣金变形行为的研究

摘要

In microforming, the workpiece size is in microscale and has only a few grains involved in a deformation zone, leading to the deformation behaviors different from those in macroscale. The researches on micro-scaled plastic deformation behavior and microforming process are thus needed. In this research, the tensile test and the embossing of microchannels using pure copper foils with different grain sizes are conducted to investigate the material size effect on the flow stress, surface roughening and local deformation behavior. It is revealed that the surface roughness increases with strain and its change rate increases with grain size. This phenomenon results from the deformation incompatibility among grains with different properties in material surfaces. In addition, the size effect on the measurement of material properties in tensile test is analyzed based on the Monte Carlo simulation. It is found that the longer the gage length and the lesser the number of grains in the specimen section in tensile test, the higher the probability to have a significantly large fraction of soft grains in the section of specimen. The decrease of flow stress with the increase of grain size is partly caused by the decrease of Taylor factor, which leads to the underestimation of the averaged flow stress of the grains along the gage length. By using the flow stress curves obtained via tensile test to simulate the microembossing process, the simulation result shows an underestimation of the deformation load and the deviation tends to increase with the increase of grain size. This further validates the occurrence of size effect leading to the error of the measurement of material flow stress in tensile test.
机译:在微成形中,工件尺寸是微尺度的,并且只有少量晶粒参与变形区域,导致变形行为不同于宏观尺度。因此需要对微观尺度的塑性变形行为和微观成形过程进行研究。在这项研究中,使用不同粒径的纯铜箔进行了微通道的拉伸试验和压花,以研究材料尺寸对流动应力,表面粗糙和局部变形行为的影响。结果表明,表面粗糙度随应变而增加,其变化率随晶粒尺寸而增加。这种现象是由于材料表面具有不同特性的晶粒之间的变形不相容性引起的。此外,基于蒙特卡洛模拟分析了尺寸对拉伸试验中材料性能测量的影响。发现在拉力测试中,标距长度越长,试样截面中晶粒的数量越少,在试样截面中具有较大比例的软晶粒的可能性就越高。随着晶粒尺寸的增加,流变应力的减小部分是由于泰勒系数的减小,这导致了沿轨距长度方向晶粒平均流变应力的低估。通过使用拉伸试验获得的流动应力曲线模拟微压花过程,模拟结果表明变形载荷被低估了,并且偏差随着晶粒尺寸的增加而趋于增大。这进一步验证了尺寸效应的发生,该尺寸效应导致了拉伸试验中材料流动应力的测量误差。

著录项

  • 作者

    Chan WL; Fu MW;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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