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Finite element simulation of thick sheet thermoforming.

机译:厚板热成型的有限元模拟。

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摘要

This PhD was organized as collaboration between Lehigh University and the Ecole des Mines d'Albi on the subject: "Numerical simulation of thick sheet thermoforming". The research applications cover a wide range of products from thermoforming, e.g., packaging, automobile parts, appliance parts, large-scale panels and covers. Due to the special nature of this PhD, and the requirements of each hosting institutes, the research was split accordingly into two parts:; At Lehigh University, under the supervision of Prof. Herman F. Nied, a full three-dimensional finite element program was developed in order to simulate the mechanical deformation during the process of thermoforming. The material behavior is considered hyperelastic with the property of incompressibility. The deformed structure may exhibit symmetries and may use a large choice of boundary conditions. A contact procedure for molds and/or displacements caused by a plug was implemented to complete the similarity with the thermoforming process. The research focused on simulating the observed nonlinear behaviors and their instabilities. The author emphasized the impact of large deformation on the numerical results and demonstrated the need for a remeshing capability.; At the Ecole des Mines d'Albi, under the supervision of Prof. Fabrice Schmidt, an equi-biaxial rheometer was developed and built in order to determine the material properties during the process of thermoforming. Thermoplastic materials consist of long macromolecular chains that when stretched, during the process of sheet extrusion, exhibit a transversal isotropic behavior. The rheometer technique is the inflation of a circular membrane made of extruded thermoplastics. The resulting strain is identified by video analysis during the membrane inflation. This dissertation focused on technical issues related to heating with the goal of overcoming the difficulty of producing a homogeneous temperature distribution.
机译:该博士是利哈伊大学和法国矿业大学阿尔比分校之间就“厚板热成型的数值模拟”的合作而组织的。研究应用涵盖了从热成型到包装,汽车零件,家电零件,大型面板和盖等多种产品。由于该博士的特殊性,以及每个托管学院的要求,因此将研究分为两个部分:在里海大学,在Herman F. Nied教授的指导下,开发了一个完整的三维有限元程序,以模拟热成型过程中的机械变形。具有不可压缩特性的材料行为被认为是超弹性的。变形的结构可能表现出对称性,并且可能会使用多种边界条件。实施了用于模具和/或由塞子引起的位移的接触程序,以完成与热成型工艺的相似性。研究集中在模拟观察到的非线性行为及其不稳定性。作者强调了大变形对数值结果的影响,并证明了需要重新定型的能力。在Albe工学院,在Fabrice Schmidt教授的指导下,开发并制造了一种等双轴流变仪,以确定热成型过程中的材料性能。热塑性材料由长的大分子链组成,这些长链在拉伸过程中在片材挤出过程中表现出横向各向同性行为。流变仪技术是对由挤出热塑性塑料制成的圆形膜进行充气。通过在膜膨胀期间的视频分析来识别所产生的应变。本文着眼于与加热有关的技术问题,以克服产生均匀温度分布的困难。

著录项

  • 作者

    Mercier, Daniel.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Applied Mechanics.; Engineering Packaging.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 229 p.
  • 总页数 229
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用力学;包装工程;工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:40:32

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