头盔面罩对冲击波致颅脑损伤的防护效能研究
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南京工程学院

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Study on the Protective Efficacy of Helmet Masks against Blast-Induced Traumatic Brain Injury
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Nanjing Institute of Technology

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    摘要:

    目的 为了更有效地减轻冲击载荷对头部造成的损伤,提升防护装备的性能。通过优化头盔面罩的结构配置,以降低冲击载荷传递至头部的能量,从而减少头部损伤风险。方法 设计了一种由聚碳酸酯与气凝胶层压复合材料制成的头盔面罩结构。采用Abaqus软件中的耦合欧拉-拉格朗日(Coupled Eulerian-Lagrangian, CEL)方法,验证了头盔-头部耦合模型的有效性,并对不同配置的头盔面罩防护结构在冲击波作用下的力学响应进行了数值模拟,分析了防护结构的类型和厚度对头部损伤的影响。结果 配备面罩的头盔能够显著延缓冲击波对面部的传播,减少颅骨应力和额叶及顶叶的颅内压(Intracranial Pressure, ICP)。在预防中度和重度创伤性脑损伤(Traumatic Brain Injury, TBI)方面,3层配置(单层0.6mm厚气凝胶)和5层配置(双层0.6mm厚气凝胶)的面罩分别能够有效降低顶叶ICP 29%和35%。3层配置(单层1.2mm厚气凝胶)的面罩在减少顶点颅骨应力方面效果最佳,降幅达50%,而5层配置(双层0.6mm厚气凝胶)的面罩在降低前点颅骨应力方面表现最优,减少了17%。结论 由聚碳酸酯与气凝胶层压复合材料组成的头盔面罩结构能有效减轻冲击波对头部的损伤,尤其是在预防中度和重度创伤性脑损伤方面,3层和5层配置的面罩提供了更佳的防护效果。本研究结果为未来防护装备的设计和优化提供了重要的理论依据。

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    Objective To more effectively mitigate the damage caused by shock waves to the head and enhance the performance of protective equipment, this study focuses on optimizing the structural configuration of helmet masks to reduce the energy transmitted from shock waves to the head, thereby minimizing the risk of head injury. Methods This study designed a helmet mask structure composed of polycarbonate and aerogel laminated composite materials. The coupled Eulerian-Lagrangian (CEL) method in Abaqus was used to verify the validity of the helmet-head coupling model, and numerical simulations were performed to study the mechanical responses of different helmet mask protective structures under shock wave action. The effects of the type and thickness of the protective structure on head injury were analyzed. Results The study found that helmets equipped with masks can effectively delay the propagation of shock waves to the face and significantly reduce cranial stress and intracranial pressure (ICP) in the frontal and parietal lobes. In the prevention of moderate and severe traumatic brain injury (TBI), the 3-layer configuration (0.6mm aerogel) and the 5-layer configuration (double 0.6mm aerogel) masks can effectively reduce parietal lobe ICP by 29% and 35%, respectively. The 3-layer configuration (1.2mm aerogel) mask performs optimal performance in reducing vertex skull stress, achieving a 50% reduction, while the 5-layer configuration (double 0.6mm aerogel) mask exhibits superior effectiveness in diminishing frontal skull stress, with a 17% reduction. Conclusions The helmet mask structure composed of polycarbonate and aerogel laminate composites can effectively reduce the damage to the head caused by explosion shock waves, especially in the prevention of moderate and severe traumatic brain injury. The 3- and 5-layer configurations provide better protection. These results provide important theoretical evidence for the optimization of future protective equipment.

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  • 收稿日期:2025-01-14
  • 最后修改日期:2025-03-30
  • 录用日期:2025-03-31
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