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Optimization design of foam/pillar for head impact protection using design of experiment approach

机译:实验方法设计泡沫/支柱优化设计

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This paper presents a method to obtain improved foam/pillar structural designs to help enhance occupant interior impact protection. Energy absorbing foams are used in this study with their thickness and crush strength being selected as primary design variables for optimization. The response surface techniques in the design of experiment are used in the optimization process. Head impact analyses are conducted by a CAE model with explicit, nonlinear, dynamic finite element code LS-DYNA3D. A baseline model is developed and verified by comparing the simulation results with the experimental data. Based on this model, the anticipated effects of stiffness of the pillar structure and the trim on the Head Injury Criterion (HIC) results are also assessed. The optimization approach in this study provides a comprehensive consideration of the factors which affect the HIC value. The optimal designs can be selected from the contour plots generated from the response surface based upon the design conditions of pillar stiffness, with/without trim. Optimization results are in the forms of foam crush strength for a given foam thickness. These results provide useful information in the design and selection of foam characteristics compatible with pillar structures for further improved head impact protection.
机译:本文提出了一种获得改进的泡沫/支柱结构设计的方法,以帮助提高乘员室内冲击保护。在本研究中使用能量吸收泡沫,其厚度和挤压强度被选择为主要设计变量以进行优化。实验设计中的响应面技术用于优化过程中。头部冲击分析由CAE模型进行明确的非线性动态有限元码LS-DYNA3D进行。通过将模拟结果与实验数据进行比较,开发和验证基线模型。基于该模型,还评估了柱结构刚度和尺寸的预期对头部损伤标准(HIC)结果的影响。本研究中的优化方法提供了对影响HIC值的因素的全面考虑。基于柱刚度的设计条件,可以从响应表面产生的轮廓图中选择最佳设计,用/不装饰。优化结果是给定泡沫厚度的泡沫挤压强度的形式。这些结果在与柱结构兼容的泡沫特性的设计和选择中提供了有用的信息,用于进一步改进的头部冲击保护。

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