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A system methodology for optimization design of the structural crashworthiness of a vehicle subjected to a high-speed frontal crash

机译:用于优化设计车辆结构崩溃的优化设计方法方法

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摘要

The structural crashworthiness design of vehicles has become an important research direction to ensure the safety of the occupants. To effectively improve the structural safety of a vehicle in a frontal crash, a system methodology is presented in this study. The surrogate model of Online support vector regression (Online-SVR) is adopted to approximate crashworthiness criteria and different kernel functions are selected to enhance the accuracy of the model. The Online-SVR model is demonstrated to have the advantages of solving highly nonlinear problems and saving training costs, and can effectively be applied for vehicle structural crashworthiness design. By combining the non-dominated sorting genetic algorithm II and Monte Carlo simulation, both deterministic optimization and reliability-based design optimization (RBDO) are conducted. The optimization solutions are further validated by finite element analysis, which shows the effectiveness of the RBDO solution in the structural crashworthiness design process. The results demonstrate the advantages of using RBDO, resulting in not only increased energy absorption and decreased structural weight from a baseline design, but also a significant improvement in the reliability of the design.
机译:车辆的结构耐火材料设计已成为确保占用者安全的重要研究方向。为了有效地改善跨前碰撞中车辆的结构安全,本研究提出了一种系统方法。采用了在线支持向量回归(Online-SVR)的代理模型来接近Crashworthess标准,选择不同的内核功能以增强模型的准确性。在线SVR模型被证明是解决高度非线性问题并节省培训成本的优点,并可有效地应用于车辆结构崩溃设计。通过组合非主导的分类遗传算法II和蒙特卡罗模拟,进行确定性优化和基于可靠性的设计优化(RBDO)。通过有限元分析进一步验证了优化解决方案,其显示了RBDO解决方案在结构崩溃设计过程中的有效性。结果证明了使用RBDO的优点,导致不仅增加了能量吸收和从基线设计的结构重量下降,而且对设计可靠性的显着改善。

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