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Experimental and numerical analysis of material deformation behavior in sheet metals and its forming process.

机译:钣金材料变形行为及其形成过程的实验和数值分析。

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摘要

Simulation-based Design and Manufacturing has shown great effectiveness in shortening design cycle. Industrial applications are now demanding accurate and robust predictions of fine details in manufacturing processes, which require fundamental mechanics understanding, and good experimental characterization methods.This thesis performs analytical, computational, and experimental analysis for the fundamental causes of surface distortion in sheet metal forming. Naturally a stability problem, surface distortion caused by in-plane compression cannot be predicted accurately by available FEM software packages. This research uses an approach that considers surface distortion as local phenomenon. By comparing the virtual work done by in-plane stresses, and the energy necessary to form various possible wave modes in the local area, the theory predicts the initiation and form of surface distortions. Effects of surface contacts and advanced material models such as kinematic hardening are considered. The theory was implemented in a numerical predictor linked with commercial FEM software codes (PAM-STAMP and LS-DYNA), and a user graphic interface was developed to enable practitioners to predict the incurrence of surface distortions and enhance the efficiency of the forming process design.Standard Yoshida Buckling tests were used to verify the wrinkling predictor. A new Contact Buckling test was designed to study the special case of buckling under single surface contact. Two types of material, 0.78mm-thick 180B steel and 1.012mm-thick 6111-T4P aluminum, were tested to verify the accuracy of the wrinkling predictor on the onset of wrinkling.It has been well documented that one important factor for accurate prediction of forming behavior is material characterization. We propose a novel tension-compression test, which is able to characterize the unloading behavior of the material, to address the challenge of experimentally measuring thin sheet's kinematic hardening behavior. This test was shown to be more cost-effective and easier to set up without loss of precision, compared with existing tests. Material properties obtained from the test helps improve accuracy of the wrinkling predictor.This thesis established numerical and experimental foundation for characterizing surface distortion and material's non-linear kinematic hardening behavior. The impact of this work lies in the advancement of the prediction accuracy in sheet metal forming.
机译:基于仿真的设计和制造在缩短设计周期方面显示出巨大的功效。现在,工业应用要求对制造过程中的精细细节进行准确而可靠的预测,这需要对基本的力学知识和良好的实验表征方法进行研究。本文对板材成形中表面变形的根本原因进行了分析,计算和实验分析。自然地存在稳定性问题,由平面内压缩引起的表面变形无法通过可用的FEM软件包准确预测。本研究使用一种将表面变形视为局部现象的方法。通过比较平面内应力完成的虚拟功和在局部区域形成各种可能的波模所需的能量,该理论预测了表面变形的产生和形式。考虑了表面接触和先进材料模型(例如运动硬化)的影响。该理论在与商业FEM软件代码(PAM-STAMP和LS-DYNA)链接的数值预测器中实现,并且开发了用户图形界面,以使从业人员可以预测表面变形的发生并提高成形工艺设计的效率。使用标准的吉田屈曲测试来验证皱纹预测因子。设计了一种新的接触屈曲测试,以研究单表面接触下屈曲的特殊情况。测试了两种材料,厚度为0.78mm的180B钢和厚度为1.012mm的6111-T4P铝,以验证起皱时起皱预测器的准确性。已充分证明,准确预测起皱的一个重要因素成型行为是材料表征。我们提出了一种新颖的拉伸压缩试验,该试验能够表征材料的卸载行为,以应对通过实验测量薄板的运动硬化行为的挑战。与现有测试相比,该测试被证明具有更高的成本效益,并且更易于设置而不会降低精度。通过试验获得的材料性能有助于提高皱纹预测器的准确性。本文为表征表面变形和材料的非线性运动硬化行为奠定了数值和实验基础。这项工作的影响在于钣金成形中预测精度的提高。

著录项

  • 作者

    Cheng, Shawn Hang.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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