Center for NeuroTrauma Research, Department of Neurosurgery, Medical College of Wisconsin, Milwaukee, WI, 53226, USA.
Mil Med. 2021 Jan 25;186(Suppl 1):639-644. doi: 10.1093/milmed/usaa421.
Under G +x accelerative loading, the Hybrid III anthropomorphic test device (ATD) is used to advance human safety. Although injury assessment risk curves (IARCs) are available at the level of the occipital condyles (commonly termed as upper neck), they do not exist for the cervical-thoracic junction (lower neck). The objectives of this study are to develop IARCs under G +x impact accelerations for the Hybrid III ATD and test device for human occupant restraint (THOR) ATD at the cervical thoracic junction.
A series of Hybrid III ATD tests were conducted using input conditions that matched previously published cadaver tests. A separate series of THOR-ATD tests were conducted using the same input conditions that matched the same previously published cadaver tests. This type of experimental design where the cadaver input condition is the same as the ATD tests are termed matched-pair tests (Cadaver-Hybrid III and Cadaver-THOR-ATD). Injury outcomes from human cadaver tests were used with loads at the cervical thoracic junction, measured in the ATD tests. Data were censored based on injury outcomes and the number of tests conducted on each specimen. Parametric survival analysis was used to derive IARCs for cervical thoracic junction force-, moment-, and interaction-based lower neck injury criterion (LNic).
Injuries were scored according to the Abbreviated Injury Scale scheme. Abbreviated Injury Scale 1 or 2 was scored as injured. The 50% risk levels for the Hybrid III ATD were 315 N, 70 Nm, and 1.12 for the cervical thoracic A/P shear force-, sagittal plane extension moment-, and LNic-based injury criterion, respectively. Results for the THOR ATD were 261 N, 69 Nm, and 1.51.
This is the first study to develop cervical thoracic junction IARCs for the ATDs based on force, moment, and LNic for posterior to anterior loading.
在 G+x 加速加载下,Hybrid III 人体模拟测试设备(ATD)被用于提高人类安全性。尽管已经有枕骨髁(通常称为上颈)的伤害评估风险曲线(IARC),但颈椎-胸椎交界处(下颈)却没有。本研究的目的是为 Hybrid III ATD 和人体乘员约束测试设备(THOR ATD)在下颈的颈椎-胸椎交界处开发 G+x 冲击加速度下的 IARC。
使用与先前公布的尸体试验相匹配的输入条件对一系列 Hybrid III ATD 试验进行了测试。使用与相同的尸体试验相匹配的相同输入条件对 THOR-ATD 进行了单独的系列试验。这种将尸体输入条件与 ATD 试验相同的实验设计被称为配对试验(尸体- Hybrid III 和尸体-THOR-ATD)。来自人体尸体试验的损伤结果与 ATD 试验中颈椎-胸椎交界处的力一起使用。根据损伤结果和每个标本进行的测试数量对数据进行了删失。参数生存分析用于根据颈椎-胸椎交界处力、弯矩和基于交互的下颈损伤准则(LNic)推导 IARC。
根据损伤严重程度分类方案(Abbreviated Injury Scale)对损伤进行评分。将损伤严重程度分类 1 或 2 评为损伤。Hybrid III ATD 的 50%风险水平分别为 315 N、70 Nm 和基于颈椎-胸椎 A/P 剪切力、矢状面伸展弯矩和 LNic 的损伤准则的 1.12。THOR ATD 的结果分别为 261 N、69 Nm 和 1.51。
这是第一项基于前后加载力、弯矩和 LNic 为 ATD 开发颈椎-胸椎交界处 IARC 的研究。