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Helmet liner evaluation to mitigate head response from primary blast exposure

机译:头盔衬里评估可减轻初次爆炸暴露引起的头部反应

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Head injury resulting from blast loading, including mild traumatic brain injury, has been identified as an important blast-related injury in modern conflict zones. A study was undertaken to investigate potential protective ballistic helmet liner materials to mitigate primary blast injury using a detailed sagittal plane head finite element model, developed and validated against previous studies of head kinematics resulting from blast exposure. Five measures reflecting the potential for brain injury that were investigated included intracranial pressure, brain tissue strain, head acceleration (linear and rotational) and the head injury criterion. In simulations, these measures provided consistent predictions for typical blast loading scenarios. Considering mitigation, various characteristics of foam material response were investigated and a factor analysis was performed which showed that the four most significant were the interaction effects between modulus and hysteretic response, stress-strain response, damping factor and density. Candidate materials were then identified using the predicted optimal material values. Polymeric foam was found to meet the density and modulus requirements; however, for all significant parameters, higher strength foams, such as aluminum foam, were found to provide the highest reduction in the potential for injury when compared against the unprotected head.
机译:在现代冲突地区,爆炸载荷造成的头部受伤,包括轻度脑损伤,已被确定为爆炸相关的重要伤害。进行了一项研究,以使用详细的矢状平面头部有限元模型研究潜在的防护性防弹头盔衬里材料,以减轻原发性爆炸伤害,并针对先前因爆炸引起的头部运动学研究进行了开发和验证。研究了反映脑损伤潜力的五项措施,包括颅内压,脑组织应变,头部加速度(线性和旋转)和头部损伤标准。在模拟中,这些措施为典型爆炸载荷场景提供了一致的预测。考虑减缓作用,研究了泡沫材料响应的各种特性,并进行了因子分析,结果表明,最重要的四个是模量与滞后响应,应力应变响应,阻尼因子和密度之间的相互作用。然后使用预测的最佳材料值确定候选材料。发现聚合物泡沫符合密度和模量要求;但是,对于所有重要参数,与未保护的头部相比,发现高强度泡沫(例如铝泡沫)可最大程度地减少受伤的可能性。

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