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Kinetic and Kinematic Responses of the RID2a, Hybrid III and Human Volunteers in Low-Speed Rear-End Collisions

机译:低速后端碰撞中RID2A,杂交III和人类志愿者的动力学和运动响应

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An anthropomorphic test device (ATD) which accurately models the kinematic and kinetic responses of human subjects during head restraint contact in low-speed rear-end collisions is needed to evaluate present and future seat and vehicle designs. The primary goal of this study was to quantify the biofidelity of a new rear-impact ATD, the RID2a, by comparing its dynamic response to those of human subjects under identical test conditions. For this study, a RID2a and a Hybrid III ATD were each exposed to 10 low-speed rear-end collisions: five at a speed change of 4 km/h and five at a speed change of 8 km/h. Sagittal plane kinematics of the head and upper torso, head restraint contact forces, and the reaction loads and moment at the atlantooccipital joint were determined and compared to the response of eleven male human subjects. Both ATDs produced repeatable response corridors. As observed by others, the Hybrid III did not replicate many features of the human response. Aside from the vertical response of the head and T1 in the global reference frame, the kinematic and kinetic responses of the RID2a reproduced most features of the human response. Head restraint forces observed in both the human subjects and the RID2a contained large vertical components that placed the neck in tension during head restraint contact. The results of this study indicated that the RID2a was able to model the overall kinematic and kinetic responses relevant to some recently-proposed mechanisms of whiplash injury.
机译:需要精确地模拟人类受试者在低速后端碰撞中的人受试者的运动和动力学反应的拟蒽型测试装置,以评估现在和未来的座椅和车辆设计。本研究的主要目标是通过将其动态响应与在相同的试验条件下的人类受试者的动态响应进行比较来量化新的后冲击ATD的生物尺寸。对于该研究,RID2A和杂交III ATD各自暴露于10个低速后端碰撞:五个以4km / h的速度变化,5 km / h。测定头部和上躯干,头部约束接触力和寰枢喷热妇关节的反应载荷和时刻的矢状平面运动学,并与十一男性人受试者的响应进行比较。 atds都产生了可重复的反应走廊。如其他人所观察到的,杂交III没有复制人类反应的许多特征。除了全球参考帧中的头部和T1的垂直响应,RID2A的运动学和动力学反应再现了人类反应的大多数特征。在人类受试者和RID2A中观察到的头部约束力含有大的垂直部件,该垂直部件将颈部放置在头部约束接触期间张力。该研究的结果表明,RID2A能够模拟与最近拟议的鞭打损伤机制相关的整体运动和动力学反应。

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