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Optimal design of material microstructures and optimization of structural topology for design-dependent loads.

机译:材料微结构的优化设计和与设计有关的载荷的结构拓扑优化。

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摘要

A strategic challenge for technology is the development of advanced composite materials to meet growing functional demands. Traditional parametric-based composite material design methods are not general enough to accommodate novel materials with unusual properties. In this dissertation, a non-parametric design method is proposed to design materials with unique properties. This method, which is a combination of topology optimization and homogenization, is especially geared to design topologies of material microstructures.; As is often the case in research, in the course of the work with microstructure topology optimizations, it became apparent that the mathematical features of homogenization responded to the unanswered problem of optimizing structural topology for design-dependent loads.; With respect to the design of material microstructures, we tackled design of thermoelastic material with unusual properties and the design of extremal microstructure corresponding to optimal material conductivity bounds. Among other things, we designed and fabricated negative thermal expansion microstructures. Experimental results confirmed the designed properties.; Regarding the problem of topology optimization for design-dependent loads, it requires a simple and efficient algorithm to simulate design-dependent loads which may change directions and location as the shape of the given structure changes. The issue of design-dependent load is critical to many engineering disciplines. In fact, all structures involving solid and fluid interaction, including darns, pipes, and airfoils, carry such design-dependent loads.; Of the two main contributions of this work on design-dependent loads, the first is the development of a new algorithm using fictitious thermal loads to simulate design-dependent loads due to mismatch of thermal expansion coefficients among constituent phases. The second contribution is the extension to compliant mechanism design which was motivated by the desire to use topology optimization to design multiple physics actuators in Micro Electro Mechanical Systems. To address a fundamental issue of modeling the design-dependent coupling forces between two physics domains, this research presents formulations combining compliant mechanisms and design-dependent loads to design compliant mechanisms actuated by hydrostatic pressure. In addition, numerical results of structures and pressure actuated compliant mechanisms are presented to demonstrate the performance of the proposed algorithms.
机译:技术的战略挑战是开发先进的复合材料以满足不断增长的功能需求。传统的基于参数的复合材料设计方法不够通用,无法容纳具有异常特性的新型材料。本文提出了一种非参数设计方法来设计具有独特性能的材料。该方法是拓扑优化和均质化的结合,特别适合于设计材料微观结构的拓扑。与研究中的情况一样,在进行微观结构拓扑优化的过程中,很明显,均质化的数学特征响应了针对设计相关载荷优化结构拓扑的未解决问题。关于材料微结构的设计,我们处理了具有非同寻常性能的热弹性材料的设计以及与最佳材料电导率范围相对应的极端微结构的设计。除其他外,我们设计和制造了负热膨胀微结构。实验结果证实了设计性能。关于与设计有关的载荷的拓扑优化问题,它需要一种简单有效的算法来模拟与设计有关的载荷,当给定结构的形状发生变化时,载荷可能会改变方向和位置。与设计有关的负载问题对于许多工程学科而言至关重要。实际上,所有涉及固体和流体相互作用的结构,包括织补,管子和机翼,都承受这种取决于设计的载荷。在这项工作中,与设计有关的负荷的两个主要贡献中,第一个是开发了一种新的算法,该算法使用虚拟热负荷来模拟由于设计热在各组成相之间的不匹配而导致的与设计有关的负荷。第二个贡献是对顺应性机械设计的扩展,其动机是希望使用拓扑优化来设计微机电系统中的多个物理执行器。为了解决对两个物理域之间取决于设计的耦合力进行建模的根本问题,本研究提出了将柔顺机构和依赖于设计的载荷相结合的设计公式,这些静力学原理是由静水压力驱动的。此外,结构和压力驱动的柔顺机构的数值结果被提出来证明所提出算法的性能。

著录项

  • 作者

    Chen, Bing-Chung.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;工程材料学;
  • 关键词

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