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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Finite element simulations of the head-brain responses to the top impacts of a construction helmet: Effects of the neck and body mass
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Finite element simulations of the head-brain responses to the top impacts of a construction helmet: Effects of the neck and body mass

机译:对施工头盔顶部冲击的有限元仿真:颈部和体重的影响

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摘要

Traumatic brain injuries are among the most common severely disabling injuries in the United States. Construction helmets are considered essential personal protective equipment for reducing traumatic brain injury risks at work sites. In this study, we proposed a practical finite element modeling approach that would be suitable for engineers to optimize construction helmet design. The finite element model includes all essential anatomical structures of a human head (i.e. skin, scalp, skull, cerebrospinal fluid, brain, medulla, spinal cord, cervical vertebrae, and discs) and all major engineering components of a construction helmet (i.e. shell and suspension system). The head finite element model has been calibrated using the experimental data in the literature. It is technically difficult to precisely account for the effects of the neck and body mass on the dynamic responses, because the finite element model does not include the entire human body. An approximation approach has been developed to account for the effects of the neck and body mass on the dynamic responses of the head-brain. Using the proposed model, we have calculated the responses of the head-brain during a top impact when wearing a construction helmet. The proposed modeling approach would provide a tool to improve the helmet design on a biomechanical basis.
机译:创伤性脑损伤是美国最常见的严重态度之一。建筑头盔被认为是在工作地点降低创伤性脑损伤风险的必要个人防护设备。在这项研究中,我们提出了一种实用的有限元建模方法,适合工程师优化施工头盔设计。有限元模型包括人头的所有基本解剖结构(即皮肤,头皮,颅骨,脑脊液,脑,髓质,脊髓,颈椎和盘)以及建筑头盔的所有主要工程部件(即壳体和悬挂系统)。使用文献中的实验数据校准了头部有限元模型。技术上难以精确地考虑颈部和体重对动态响应的影响,因为有限元模型不包括整个人体。已经开发了一种近似方法,以考虑颈部和体重对头脑动态响应的影响。使用所提出的模型,我们已经计算了戴着建筑头盔时头脑的响应。建议的建模方法将提供一种在生物力学基础上改善头盔设计的工具。

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