Yu Henry Y, Knowles Brooklynn M, Dennison Christopher R
Department of Mechanical Engineering, University of Alberta.
Department of Mechanical Engineering, University of Alberta;
J Vis Exp. 2017 Sep 21(127):56288. doi: 10.3791/56288.
Conventional wisdom and the language in international helmet testing and certification standards suggest that appropriate helmet fit and retention during an impact are important factors in protecting the helmet wearer from impact-induced injury. This manuscript aims to investigate impact-induced injury mechanisms in different helmet fit scenarios through analysis of simulated helmeted impacts with an anthropometric test device (ATD), an array of headform acceleration transducers and neck force/moment transducers, a dual high speed camera system, and helmet-fit force sensors developed in our research group based on Bragg gratings in optical fiber. To simulate impacts, an instrumented headform and flexible neck fall along a linear guide rail onto an anvil. The test bed allows simulation of head impact at speeds up to 8.3 m/s, onto impact surfaces that are both flat and angled. The headform is fit with a crash helmet and several fit scenarios can be simulated by making context specific adjustments to the helmet position index and/or helmet size. To quantify helmet retention, the movement of the helmet on the head is quantified using post-hoc image analysis. To quantify head and neck injury potential, biomechanical measures based on headform acceleration and neck force/moment are measured. These biomechanical measures, through comparison with established human tolerance curves, can estimate the risk of severe life threatening and/or mild diffuse brain injury and osteoligamentous neck injury. To our knowledge, the presented test-bed is the first developed specifically to assess biomechanical effects on head and neck injury relative to helmet fit and retention.
传统观念以及国际头盔测试与认证标准中的表述表明,在撞击过程中头盔的合适佩戴和固定是保护头盔佩戴者免受撞击致伤的重要因素。本手稿旨在通过使用人体测量试验装置(ATD)、一系列头型加速度传感器和颈部力/力矩传感器、双高速摄像系统以及我们研究小组基于光纤布拉格光栅开发的头盔佩戴力传感器,对模拟的佩戴头盔撞击进行分析,来研究不同头盔佩戴场景下的撞击致伤机制。为了模拟撞击,一个装有仪器的头型和柔性颈部沿着线性导轨落到砧座上。该试验台能够模拟速度高达8.3米/秒的头部撞击,撞击表面可以是平坦的也可以是有角度的。头型佩戴有防撞头盔,通过对头盔位置指数和/或头盔尺寸进行特定情境调整,可以模拟多种佩戴场景。为了量化头盔的固定情况,使用事后图像分析来量化头盔在头部的移动。为了量化头部和颈部的受伤可能性,测量基于头型加速度和颈部力/力矩的生物力学指标。通过将这些生物力学指标与既定的人体耐受曲线进行比较,可以估计严重危及生命和/或轻度弥漫性脑损伤以及骨韧带性颈部损伤的风险。据我们所知,所展示的试验台是首个专门开发用于评估相对于头盔佩戴和固定情况对头部和颈部损伤的生物力学影响的试验台。