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Energy-Absorbing Car Seat Designs for Reducing Whiplash

机译:减少鞭打的能量吸收式汽车座椅设计

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Objectives: This study presents an investigation of anti-whiplash features that can be implemented in a car seat to reduce whiplash injuries in the case of a rear impact. The main emphasis is on achieving a seat design with good energy absorption properties. Methods: A biofidelic 50th percentile male multi-body human model for rear impact is developed to evaluate the performance of car seat design concepts. The model is validated using the responses of 7 volunteers from the Japanese Automobile Research Institute (JARI) sled tests, which were performed at an impact speed of 8 kph with a rigid seat and without head restraint and seatbelt. A generic multi-body car seat model is also developed to implement various seatback and recliner properties, anti-whiplash devices, and head restraints. Using the same driving posture and the rigid seat in the JARI sled tests as the basic configuration, several anti-whiplash seats are designed to allow different types of motion for the seatback and seat-pan. Results: The anti-whiplash car seat design concepts limit neck internal motion successfully until the head-to-head restraint contact occurs and they exhibit low NIC{sub}(max) values (7 m{sup}2/s{sup}2 on average). They are also effective in reducing neck compression forces and T1 forward accelerations. In principle, these car seat design concepts employ controlled recliner rotation and seat-pan displacement to limit the formation of S-shape. This is accomplished by using anti-whiplash devices that absorb the crash energy in such a way that an optimum protection is provided at different severities. Conclusions: The results indicate that the energy absorbing car seat design concepts all demonstrate good whiplash-reducing performances at the IIWPG standard pulse. Especially in higher severity rear impacts, two of the car seat design concepts reduce the ramping of the occupant considerably.
机译:目标:这项研究提出了一种防鞭打功能的研究,该功能可在汽车座椅上实施,以减少后碰撞时的鞭打伤害。主要重点是实现具有良好能量吸收特性的座椅设计。方法:开发了一种适用于后方撞击的50%男性生物多样性人体模型,以评估汽车座椅设计概念的性能。该模型使用了来自日本汽车研究所(JARI)的7名志愿者的回应进行了验证,该参与者的测试速度为8 kph,带有刚性座椅,没有头部保护装置和安全带。还开发了通用的多体汽车座椅模型,以实现各种座椅靠背和躺椅特性,防鞭打装置和头枕。在JARI雪橇测试中,使用与基本配置相同的驾驶姿势和刚性座椅,设计了多个防鞭打座椅,以允许座椅靠背和座板进行不同类型的运动。结果:防鞭打汽车座椅设计概念成功地限制了颈部的内部运动,直到发生头对头约束接触并且它们展现出较低的NIC {sub}(max)值(7 m {sup} 2 / s {sup} 2一般)。它们还可以有效减少颈部压力和T1向前的加速度。原则上,这些汽车座椅设计概念采用可调节的躺椅旋转和座椅底盘位移来限制S形的形成。这是通过使用吸收碰撞能量的防鞭打装置来实现的,以便在不同的严重程度下提供最佳的保护。结论:结果表明,在IIWPG标准脉冲下,能量吸收式汽车座椅设计概念均显示出良好的减鞭性能。尤其是在高强度的后部碰撞时,两种汽车座椅设计理念可大大减少乘员的倾斜。

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