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Design optimization of vehicle structures for crashworthiness improvement.

机译:车辆结构的设计优化,以提高耐撞性。

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摘要

The complicated nature of the physical crash processes of complex vehicle structures makes design optimization for crashworthiness a very challenging task. Moreover, large scale and highly nonlinear nature of crashworthiness simulations of vehicle structure make it impractical to conduct direct optimization on the full nonlinear model of the structure. The main objective of the thesis is to present a systematic and practical methodology to conduct vehicle crashworthiness design optimization efficiently at early stages of design. The thesis includes four main parts. In the first part, an efficient and practical methodology for design optimization of vehicle structures under frontal impact for crashworthiness improvement is presented. The proposed methodology is based on identifying the main vehicle structural part contributing most to the total amount of impact energy absorbed in the whole vehicle structure. The computationally efficient surrogate model of expensive nonlinear finite element simulation of this major vehicle part is developed and then integrated with gradient based optimization algorithm to maximize its absorbed impact energy while guarding against increase in its weight. In the second part, a methodology for deriving the important relation between minimum structural weight and maximum impact energy is presented. The proposed methodology is based on the principle of the Pareto front and multiobjective optimization. The methodology enables the designer to evaluate the crashworthiness performance of any suggested design easily and effectively. Moreover, the methodology provides different optimum designs from which the designer can easily select the optimum design variables to improve the performance of the initial design. In the third part, the crashworthiness behavior of simple thin walled structures and vehicle structural components made of magnesium due to its light weight is examined and a new methodology for material design optimization is presented. The proposed methodology adds material type as design variables to formal size design variables. Direct optimization using the genetic algorithm is conducted to find the optimum material combination and part's thicknesses to improve the crashworthiness performance of the vehicle structure. Finally in the fourth part, the effect of imperfection on crush elements performance is studied. Different imperfection configurations are proposed to improve the crashworthiness performance of crush elements. The genetic algorithm is directly combined with nonlinear finite elements models to search for optimum imperfection values. The results show that the crashworthiness performance of crush elements can be greatly improved through introduction of proper imperfection. Using the proposed methodologies, the current research presents a fundamental and systematic study to conduct design optimization of vehicle structures practically and efficiently.
机译:复杂的车辆结构的物理碰撞过程的复杂性质使得针对耐撞性的设计优化成为一项非常艰巨的任务。此外,车辆结构耐撞性仿真的大规模和高度非线性性质使得对结构的完整非线性模型进行直接优化是不切实际的。本文的主要目的是提出一种系统和实用的方法,以在设计的早期阶段有效地进行车辆防撞性设计优化。本文主要包括四个部分。在第一部分中,提出了一种有效且实用的方法,用于在正面碰撞下优化车辆结构以提高耐撞性。所提出的方法基于确定主要的车辆结构部分,该部分对整个车辆结构吸收的冲击能量总量贡献最大。开发了该汽车主要零件的昂贵的非线性有限元模拟的计算有效替代模型,然后将其与基于梯度的优化算法集成,以最大程度地吸收其吸收的冲击能量,同时防止其重量增加。在第二部分中,提出了一种推导最小结构重量和最大冲击能之间重要关系的方法。所提出的方法基于帕累托前沿和多目标优化的原理。该方法使设计人员能够轻松,有效地评估任何建议设计的耐撞性能。此外,该方法提供了不同的最佳设计,设计人员可以从中轻松选择最佳设计变量以提高初始设计的性能。在第三部分中,研究了由镁制成的轻质简单薄壁结构和车辆结构部件的耐撞性,并提出了一种材料设计优化的新方法。所提出的方法将材料类型作为设计变量添加到正式尺寸设计变量中。使用遗传算法进行直接优化,以找到最佳的材料组合和零件的厚度,以提高车辆结构的耐撞性能。最后在第四部分中,研究了缺陷对破碎元件性能的影响。提出了不同的缺陷构造以提高挤压元件的耐撞性能。遗传算法直接与非线性有限元模型结合,以寻找最佳缺陷值。结果表明,通过引入适当的缺陷,可以大大提高挤压元件的耐撞性能。使用提出的方法,当前的研究提出了基础和系统的研究,以切实有效地进行车辆结构的设计优化。

著录项

  • 作者

    Kamel Ibrahim, Hesham.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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