用小腿有限元模型分析靴在轴向碰撞中的力缓解。

Q2 Medicine Stapp car crash journal Pub Date : 2019-11-01 DOI:10.4271/2019-22-0011
Carolyn E Hampton, Michael Kleinberger, Michael Schlick, Narayan Yoganandan, Frank A Pintar
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引用次数: 2

摘要

通过下肢轴线的底板撞击造成的下肢损伤是民用和军用车辆乘员受伤和致残的一个主要原因。重新访问了PMHS摆冲击的集合,以获得在同一腿上进行成对启动/未启动测试的数据。利用两个PMHS的四条小腿,发现了五组成对摆冲击(共10次实验)。PMHS的尺寸和年龄代表了一个普通的年轻成年男性。在这些测试中,PMHS腿被3.4或5.8 kg的摆锤以5、7或10 m/s (42-288 J)的初始速度撞击。开发了一个匹配的LS-DYNA有限元模型来复制实验,并提供额外的能量、应变和应力数据。模拟结果利用峰值和CORA曲线的相关性与PMHS数据相匹配。实验力范围为1.9 ~ 12.1 kN,模拟力范围为2.0 ~ 11.7 kN。战斗靴的使用通过压缩鞋底和鞋垫,对跟骨应变有类似的缓解作用,实验中减少了36%的峰值力(模拟中减少了32%)。模拟的Von Mises应力轮廓显示,在不穿靴子的情况下,靴子减轻并转移了跟骨到穿靴子的距骨-胫骨关节的应力集中,这可能解释了为什么以前的一些研究观察到使用靴子或填充物对胫骨损伤的转移。
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Analysis of Force Mitigation by Boots in Axial Impacts using a Lower Leg Finite Element Model.

Lower extremity injuries caused by floor plate impacts through the axis of the lower leg are a major source of injury and disability for civilian and military vehicle occupants. A collection of PMHS pendulum impacts was revisited to obtain data for paired booted/unbooted test on the same leg. Five sets of paired pendulum impacts (10 experiments in total) were found using four lower legs from two PMHS. The PMHS size and age was representative of an average young adult male. In these tests, a PMHS leg was impacted by a 3.4 or 5.8 kg pendulum with an initial velocity of 5, 7, or 10 m/s (42-288 J). A matching LS-DYNA finite element model was developed to replicate the experiments and provide additional energy, strain, and stress data. Simulation results matched the PMHS data using peak values and CORA curve correlations. Experimental forces ranged between 1.9 and 12.1 kN experimentally and 2.0 and 11.7 kN in simulation. Combat boot usage reduced the peak force by 36% experimentally (32% in simulation) by compressing the sole and insole with similar mitigations for calcaneus strain. The simulated Von Mises stress contours showed the boot both mitigating and shifting stress concentrations from the calcaneus in unbooted impacts to the talus-tibia joint in the booted impacts, which may explain why some previous studies have observed shifts to tibia injuries with boot or padding usage.

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Stapp car crash journal
Stapp car crash journal Medicine-Medicine (all)
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