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首页> 外文期刊>Journal of micro and nano manufacturing >Analysis of Micro/Mesoscale Sheet Forming Process by Strain Gradient Plasticity and Its Characterization of Tool Feature Size Effects
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Analysis of Micro/Mesoscale Sheet Forming Process by Strain Gradient Plasticity and Its Characterization of Tool Feature Size Effects

机译:应变梯度塑性的微/间距片材成形过程分析及其刀具特征尺寸效应的表征

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摘要

Conventional material models cannot describe material behaviors precisely in micro/mesoscale due to the size/scale effects. In micro/mesoscale forming process, the reaction force, localized stress concentration, and formability are not only dependent on the strain distribution and strain path but also on the strain gradient and strain gradient path caused by decreased scale. This study presented an analytical model based on the conventional mechanism of strain gradient (CMSG) plasticity. Finite element (FE) simulations were performed to study the effects of the width of microchannel features. Die sets were fabricated and micro/mesoscale sheet forming experiments were conducted. The results indicated that the CMSG plastic theory achieves better agreements compared to the conventional plastic theory. It was also found that the influence of strain gradient on the forming process increases with the decrease of the geometrical parameters of tools. Furthermore, the feature size effects in the forming process were evaluated and quantitated by the similarity difference and the similarity accuracy. Various tool geometrical parameters were designed based on the Taguchi method to explore the influence of the strain gradient caused by the decrease of tool dimension. According to the scale law, the difference and accuracy of similarity were calculated. Greater equivalent strain gradient was revealed with the decrease of tool dimension, which led to the greater maximum reaction force error due to the increasing size effects. The main effect plots for equivalent strain gradient and reaction force indicated that the influence of tools clearance is greater than those of punch radius, die radius, and die width.
机译:由于尺寸/比例效应,传统的材料模型不能精确地描述Micro / Mesoscale中的材料行为。在微/间距形成过程中,反作用力,局部应力浓度和可成形性不仅取决于应变分布和应变路径,而且还依赖于由降低尺度减少引起的应变梯度和应变梯度路径。该研究介绍了基于应变梯度(CMSG)可塑性的传统机理的分析模型。进行有限元(FE)模拟以研究微通道特征宽度的影响。制造模具套,并进行微/间尺度板形成实验。结果表明,与传统塑料理论相比,CMSG塑料理论实现了更好的协议。还发现,随着工具几何参数的降低,应变梯度对成形过程的影响增加。此外,通过相似性差和相似度评估形成过程中的特征尺寸效应。基于Taguchi方法设计了各种工具几何参数,以探讨刀具尺寸减小引起的应变梯度的影响。根据规模法,计算了相似性的差异和准确性。随着工具尺寸的降低,揭示了更大的等效应变梯度,这导致由于尺寸效应的增加而导致最大的最大反作用力误差。用于等效应变梯度和反作用力的主效应图表明,工具间隙的影响大于冲头半径,模具半径和模具宽度。

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  • 来源
  • 作者单位

    Shanghai Key Laboratory of Digital Manufacture for Thin-walled Structures Shanghai Jiao Tong University;

    Shanghai Key Laboratory of Digital Manufacture for Thin-walled Structures Shanghai Jiao Tong University;

    Shanghai Key Laboratory of Digital Manufacture for Thin-walled Structures Shanghai Jiao Tong University;

    Shanghai Key Laboratory of Digital Manufacture for Thin-walled Structures Shanghai Jiao Tong University;

    Department of Mechanical Engineering and Applied Mechanics University of Michigan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械制造工艺;
  • 关键词

    Micro/mesoforming; Size effect; Strain gradient; Similarity;

    机译:微/偏模型;尺寸效果;应变梯度;相似性;

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