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低速侧面碰撞中胸骨运动学的生物逼真度通道

Biofidelity Corridors for Sternum Kinematics in Low-Speed Side Impacts.

作者信息

Subit Damien, Möhler Felix, Pipkorn Bengt

机构信息

a Ecole Nationale Supérieure d'Arts et Métiers , LBM/Institut de Biomecanique Humaine Georges Charpak , Paris , France.

b University of Virginia , Center for Applied Biomechanics , Charlottesville , Virginia.

出版信息

Traffic Inj Prev. 2015;16 Suppl 2:S168-75. doi: 10.1080/15389588.2015.1071803.

Abstract

OBJECTIVE

Field data show that side impact car crashes have become responsible for a greater proportion of the fatal crashes compared to frontal crashes, which suggests that the protection gained in frontal impact has not been matched in side impact. One of the reasons is the lack of understanding of the torso injury mechanisms in side impact. In particular, the deformation of the rib cage and how it affects the mechanical loading of the individual ribs have yet to be established. Therefore, the objective of this study was to characterize the ribcage deformation in side impacts by describing the kinematics of the sternum relative to the spine.

METHODS

The 3D kinematics of the 1st and of the 5th or 6th thoracic vertebrae and of the sternum were obtained for three Post Mortem Human Subjects (PMHS) impacted laterally by a rigid wall traveling at 15 km/h. The experimental data were processed to express the kinematics of the sternum relative to the spine throughout the impact event. Methods were developed to interpolate the kinematics of the vertebrae for which experimental data were not available.

RESULTS

The kinematics of the sternocostal junction for ribs 1 to 6 as well as the orientation of the sternum were expressed in the vertebra coordinate systems defined for each upper thoracic vertebra (T1 to T6). Corridors were designed for the motion of the sternum relative to each vertebra. In the experiments, the sternum moved upward for all rib levels (1 to 6), and away from the spine with an amplitude that increased with the decreasing rib level (from rib 1 to rib 6). None of the differences observed in the kinematics could be correlated to the occurrence of rib fractures.

CONCLUSIONS

This study provides both qualitative and quantitative information for the ribcage skeletal kinematics in side impact. This data set provides the information required to better evaluate computational models of the thorax for side impact simulations. The corridors developed in this study provide new biofidelity targets for the impact response of the ribcage. This study contributes to augmenting the state of knowledge of the human chest deformation in side impact to better characterize the rib fracture mechanisms.

摘要

目的

现场数据表明,与正面碰撞相比,侧面碰撞汽车事故在致命事故中所占比例更大,这表明正面碰撞中获得的保护在侧面碰撞中并未得到匹配。原因之一是对侧面碰撞中躯干损伤机制缺乏了解。特别是,胸廓的变形及其如何影响单根肋骨的机械负荷尚未明确。因此,本研究的目的是通过描述胸骨相对于脊柱的运动学来表征侧面碰撞中胸廓的变形。

方法

对三名尸体供者(PMHS)进行研究,使其受到以15公里/小时速度行进的刚性壁的侧面撞击,获取第一胸椎以及第五或第六胸椎和胸骨的三维运动学数据。对实验数据进行处理,以表达整个撞击过程中胸骨相对于脊柱的运动学。开发了一些方法来插值那些没有实验数据的椎骨的运动学数据。

结果

第1至6肋骨的胸骨肋关节的运动学以及胸骨的方向在为每个上胸椎(T1至T6)定义的椎骨坐标系中表示。设计了胸骨相对于每个椎骨运动的通道。在实验中,胸骨在所有肋骨水平(1至6)均向上移动,并远离脊柱,其幅度随着肋骨水平的降低(从第1肋骨到第6肋骨)而增加。在运动学中观察到的差异均与肋骨骨折的发生无关。

结论

本研究为侧面碰撞中胸廓骨骼运动学提供了定性和定量信息。该数据集提供了更好地评估用于侧面碰撞模拟的胸部计算模型所需的信息。本研究中开发的通道为胸廓的撞击响应提供了新的生物逼真度目标。本研究有助于增加对侧面碰撞中人体胸部变形的认识,以更好地表征肋骨骨折机制。

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