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A computational study of influence of helmet padding materials on the human brain under ballistic impacts

机译:弹道冲击下头盔填充材料对人脑影响的计算研究

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The results of a computational study of a helmeted human head are presented in this paper. The focus of the work is to study the effects of helmet pad materials on the level of acceleration, inflicted pressure and shear stress in a human brain model subjected to a ballistic impact. Four different closed cell foam materials, made of expanded polystyrene and expanded polypropylene, are examined for the padding material. It is assumed that bullets cannot penetrate the helmet shell. Finite element modelling of the helmet, padding system, head and head components is used for this dynamic nonlinear analysis. Appropriate contacts and conditions are applied between the different components of the head, as well as between the head and the pads, and the pads and the helmet. Based on the results of simulations in this work, it is concluded that the stiffness of the foam has a prominent role in reducing the level of the transferred load to the brain. A pad that is less stiff is more efficient in absorbing the impact energy and reducing the sudden acceleration of the head and consequently lowers the brain injury level. Using the pad with the least stiffness, the influence of the angle of impacts as well as the locations of the ballistic strike is studied.
机译:本文介绍了头盔式人头的计算研究结果。这项工作的重点是研究头盔垫材料在受到弹道冲击的人脑模型中对加速度,施加的压力和剪切应力水平的影响。检查了由发泡聚苯乙烯和发泡聚丙烯制成的四种不同的闭孔泡沫材料的填充材料。假定子弹不能穿透头盔壳。头盔,衬垫系统,头部和头部组件的有限元建模用于此动态非线性分析。在头部的不同组件之间以及在头部和护垫之间以及护垫和头盔之间施加适当的接触和条件。根据这项工作中的模拟结果,可以得出结论,泡沫的硬度在降低传递到大脑的负荷水平方面具有重要作用。刚度较小的垫在吸收冲击能量和减少头部的突然加速度方面更有效,从而降低了脑部受伤的程度。使用具有最小刚度的垫板,研究了冲击角以及弹道打击位置的影响。

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