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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine >A numerical study of the effect of axial acceleration on the responses of the cervical spine during low-speed rear-end impact
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A numerical study of the effect of axial acceleration on the responses of the cervical spine during low-speed rear-end impact

机译:轴向加速度对低速追尾撞击过程中颈椎反应影响的数值研究

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摘要

A detailed, three-dimensional, head–neck (vertebral segments C0 to C7) finite element model – developed and validated previously on the basis of the actual geometry of a cadaveric specimen – was used to evaluate the effect of cranial acceleration on the response of the cervical spine during low-speed, rear-end impact. Analyses were carried out to compare the predicted overall and segmental rotations, peak disc stresses, and capsular ligament strains of each motion segment during whiplash with or without cranial acceleration applied on the C7 inferior surface. The results show that, in the first 150 ms, the variation curves of predicted segmental rotational angles, disc stresses, and capsular strains for each motion segment overlapped well under the two conditions. However, after 150 ms, the capsular strains of C2 to C6 without cranial acceleration applied on C7 were all obviously lower than those with cranial acceleration applied, but the segmental rotational angles and disc stresses remain unaffected. It was implied that, although without cranial acceleration applied on C7, the relatively simple head–neck model could be used to reflect effectively the biomechanical response of the cervical spine during the initial stage (i.e. 150 ms) under low-speed, rear-end impact as well as the whole-human-body dummy model.
机译:详细的三维头颈(椎体节段C0至C7)有限元模型-先前是根据尸体标本的实际几何形状开发并验证的-用于评估颅骨加速度对脑脊液反应的影响。颈椎在低速,追尾时受到冲击。进行分析以比较在鞭打期间在C7下表面施加或不施加颅骨加速度的情况下每个运动节段的预测的整体旋转和节段旋转,峰值椎间盘应力和包膜韧带应变。结果表明,在最初的150 ms中,在两个条件下,每个运动节段的预测节段旋转角度,椎间盘应力和包囊应变的变化曲线重叠良好。然而,在150毫秒后,未施加C7的颅骨加速度的C2至C6荚膜应变均明显低于施加C2的颅骨应变,但节段旋转角度和椎间盘应力均不受影响。这暗示着,尽管没有在C7上施加颅骨加速,但相对简单的头颈模型仍可用于有效反映低速,后端时初始阶段(即150 ms)时颈椎的生物力学响应。影响以及整个人体虚拟模型。

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