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A design optimization approach of vehicle hood for pedestrian protection

机译:行人保护车罩的设计优化方法

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Head injuries are the most common cause of fatality in vehicle-to-pedestrian collisions. To reduce the incidence and severity of such injuries, subsystem tests are used in which headform impactors are impacted upon the vehicle hood. The development and validation of an adult headform impactor finite element (FE) model are presented in the study. The geometry was obtained from a drawing of a physical headform while the skin material model was modeled as viscoelastic material with parameters identified by FE optimization to match quasi-static and dynamic test data reported in literature. Overall, it was shown that the geometrical and inertial characteristics of the headform FE model developed in this study satisfy compliance and certification regulations. Then, the results from a hood design optimization using simulations of a headform-to-hood impact test are presented. The baseline design was a generic hood design consisting of two plates connected by buckling structures. Minimization of the underhood clearance space subjected to the admissible limit of head injury risk under impact as constraint was included in an optimization problem. The automated design process, which considered the geometry of connecting spools and the panel thicknesses as design variables converged to an optimum design after several iterations. The methodology and recommendations presented in this paper may assist in the hood design of new vehicle models to reduce pedestrian head injuries and meet new safety requirements.
机译:头部受伤是车辆与行人碰撞中最致命的死亡原因。为了减少此类伤害的发生率和严重程度,使用了子系统测试,在这种测试中,头枕撞击器撞击了汽车发动机罩。研究中介绍了成人头型撞击器有限元(FE)模型的开发和验证。从物理头模的图形获得几何形状,而将皮肤材料模型建模为粘弹性材料,并通过有限元优化确定参数,以匹配文献中报道的准静态和动态测试数据。总体而言,结果表明,本研究开发的头模有限元模型的几何和惯性特性满足合规性和认证规定。然后,给出了使用头枕对引擎盖碰撞测试进行仿真的引擎盖设计优化结果。基线设计是通用罩设计,由两个通过屈曲结构连接的板组成。在优化问题中包括了在受到冲击时头部受伤风险的容许极限的情况下,使引擎盖下空间的最小化。自动设计过程将连接线轴的几何形状和面板厚度视为设计变量,经过多次迭代后收敛到最佳设计。本文提出的方法和建议可能有助于新车型的发动机罩设计,以减少行人头部受伤并满足新的安全要求。

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