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A New Biofidelic Sagittal Plane Surrogate Neck for Head-First Impacts

机译:一个新的生物理想矢状面代孕颈

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Objective: To evaluate a prototype sagittal plane surrogate neck model designed to provide a biofidelic response to head-first impacts with a straightened cervical posture. Methods: Published biomechanical studies were used in the design to define the range of motion (ROM) and stiffness in both flexion-extension rotation and axial compression. The neck was tested in a series of head-first impacts on a drop tower to investigate the temporal aspects of the kinetic axial force response for the head and neck. A separate series of flexion-extension tests was conducted in a spinal motion simulator to assess its ROM and bending stiffness. Results: In impacts with a 104 N axial preload, the surrogate head and neck displayed a bimodal response to force development in agreement with published studies of cadaveric head-first impacts. In bending without an axial preload, the neck had an ROM and bending stiffness representative of cadaveric human spines and it included a large neutral zone, but with the incremental addition of axial preload these metrics were somewhat reduced. Conclusions: The model appears suitable for studying the scenario of sagittal plane, aligned column impacts. Further design refinements are required to provide biofidelity in both sagittal bending and head-first impacts using a single level of axial preload. This would be necessary to study impact scenarios where considerable sagittal plane neck rotation occurs at impact. The model has identified some key concepts that must be considered for continued design and improvement of a dedicated dummy neck for head-first impacts.
机译:目的:评估矢状面替代颈部模型的原型,该模型旨在通过伸直的颈椎姿势提供对头一次撞击的生物仿生响应。方法:在设计中使用已发表的生物力学研究来定义屈伸旋转和轴向压缩的运动范围(ROM)和刚度。颈部在落塔上进行了一系列头部优先的撞击测试,以研究头部和颈部的动态轴向力响应的时间方面。在脊柱运动模拟器中进行了一系列单独的屈伸测试,以评估其ROM和弯曲刚度。结果:在轴向预紧力为104 N的撞击中,代用人头部和颈部对力量发展表现出双峰响应,与尸体头部先撞击的已发表研究一致。在没有轴向预紧力的弯曲中,颈部具有代表尸体人脊椎的ROM和弯曲刚度,并且包括较大的中性区,但是随着轴向预紧力的增加,这些度量值有所降低。结论:该模型似乎适用于研究矢状面,对齐的柱撞击的情况。需要进一步的设计改进,以使用单水平的轴向预紧力在弧矢弯曲和头部冲击中提供生物保真度。这对于研究在撞击时会发生相当大的矢状平面颈部旋转的撞击情况是必要的。该模型已经确定了一些关键概念,这些对于继续设计和改进专用假人脖子以迎头撞击而言必须考虑。

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