Biomedical Engineering, Wake Forest University School of Medicine, 575 Patterson Ave, Winston-Salem, NC, 27101, USA.
Ann Biomed Eng. 2020 Jan;48(1):258-270. doi: 10.1007/s10439-019-02345-7. Epub 2019 Sep 13.
Head injury is a growing concern within contact sports, including American football. Computational tools such as finite element (FE) models provide an avenue for researchers to study, and potentially optimize safety tools, such as helmets. The goal of this study was to develop an accurate representative helmet model that could be used in further study of head injury to mitigate the toll of concussions in contact sports. An FE model of a Schutt Air XP Pro football helmet was developed through three major steps: geometry development, material characterization, and model validation. The fully assembled helmet model was fit onto a Hybrid III dummy head-neck model and National Operating Committee on Standards for Athletic Equipment (NOCSAE) head model and validated through a series of 67 representative impacts similar to those experienced by a football player. The kinematic and kinetic response of the model was compared to the response of the physical experiments, which included force, head linear acceleration, head angular velocity, and carriage acceleration. The outputs between the model and the physical tests were quantitatively evaluated using CORelation and Analysis (CORA), amounting to an overall averaged score of 0.76. The model described in this study has been extensively validated and can function as a building block for innovation in player safety.
头部损伤在接触性运动中越来越受到关注,包括美式橄榄球。计算工具,如有限元(FE)模型,为研究人员提供了一种途径,可以研究并可能优化安全工具,如头盔。本研究的目的是开发一种准确的代表性头盔模型,可用于进一步研究头部损伤,以减轻接触性运动中脑震荡的影响。通过三个主要步骤,即几何形状开发、材料特性描述和模型验证,开发了舒特空气 XP 专业橄榄球头盔的 FE 模型。将完全组装好的头盔模型安装在 Hybrid III 假人头颈模型和国家运动设备标准委员会(NOCSAE)头部模型上,并通过一系列 67 个类似于橄榄球运动员所经历的代表性冲击进行验证。模型的运动学和动力学响应与物理实验的响应进行了比较,包括力、头部线性加速度、头部角速度和滑架加速度。使用 CORelation and Analysis(CORA)对模型和物理测试之间的输出进行定量评估,总平均得分为 0.76。本研究中描述的模型已经过广泛验证,可以作为创新球员安全的基础。