首页> 外文期刊>Military Medicine: Official Journal of AMSUS, The Society of the Federal Health Agencies >Combat Helmet Suspension System Stiffness Influences Linear Head Acceleration and White Matter Tissue Strains: Implications for Future Helmet Design
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Combat Helmet Suspension System Stiffness Influences Linear Head Acceleration and White Matter Tissue Strains: Implications for Future Helmet Design

机译:作战头盔悬架系统刚度影响线性头部加速度和白质组织菌株:对未来头盔设计的影响

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摘要

Combat helmets are expected to protect the warfighter from a variety of blunt, blast, and ballistic threats. Their blunt impact performance is evaluated by measuring linear headform acceleration in drop tower tests, which may be indicative of skull fracture, but not necessarily brain injury. The current study leverages a blunt impact biomechanics model consisting of a head, neck, and helmet with a suspension system to predict how pad stiffness affects both (1) linear acceleration alone and (2) brain tissue response induced by both linear and rotational acceleration. The approach leverages diffusion tensor imaging information to estimate how pad stiffness influences white matter tissue strains, which may be representative of diffuse axonal injury. Simulation results demonstrate that a softer pad material reduces linear head accelerations for mild and moderate impact velocities, but a stiffer pad design minimizes linear head accelerations at high velocities. Conversely, white matter tract-oriented strains were found to be smallest with the softer pads at the severe impact velocity. The results demonstrate that the current helmet blunt impact testing standards' standalone measurement of linear acceleration does not always convey how the brain tissue responds to changes in helmet design. Consequently, future helmet testing should consider the brain's mechanical response when evaluating new designs.
机译:预计作战头盔将保护来自各种钝,爆炸和弹道威胁的作战人士。通过测量滴塔试验中的线性头部加速度来评估它们的钝碰撞性能,这可能指示颅骨骨折,但不一定是脑损伤。目前的研究利用了由悬挂系统的头部,颈部和头盔组成的钝撞击生物力学模型,以预测焊盘刚度如何影响(1)线性加速度和(2)由线性和旋转加速度引起的脑组织应答。该方法利用扩散张量成像信息来估计垫刚度如何影响白体组织菌株,其可以代表弥漫性轴突损伤。仿真结果表明,更柔软的焊盘材料可减少温和和中等冲击速度的线性头部加速度,但是更纤巧的焊盘设计在高速度下最小化线性头部加速度。相反,发现白质托管的菌株在严重冲击速度下与柔软的垫最小。结果表明,目前的头盔钝性冲击测试标准的线性加速度的独立测量并不总是能够传达脑组织如何响应头盔设计的变化。因此,未来的头盔测试应在评估新设计时考虑大脑的机械响应。

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