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Development of a Finite Element Head Model for the Study of Impact Head Injury

机译:用于冲击头损伤研究的有限元头模型的开发

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摘要

This study is aimed at developing a high quality, validated finite element (FE) human head model for traumatic brain injuries (TBI) prediction and prevention during vehicle collisions. The geometry of the FE model was based on computed tomography (CT) and magnetic resonance imaging (MRI) scans of a volunteer close to the anthropometry of a 50th percentile male. The material and structural properties were selected based on a synthesis of current knowledge of the constitutive models for each tissue. The cerebrospinal fluid (CSF) was simulated explicitly as a hydrostatic fluid by using a surface-based fluid modeling method. The model was validated in the loading condition observed in frontal impact vehicle collision. These validations include the intracranial pressure (ICP), brain motion, impact force and intracranial acceleration response, maximum von Mises stress in the brain, and maximum principal stress in the skull. Overall results obtained in the validation indicated improved biofidelity relative to previous FE models, and the change in the maximum von Mises in the brain is mainly caused by the improvement of the CSF simulation. The model may be used for improving the current injury criteria of the brain and anthropometric test devices.
机译:这项研究旨在开发一种高质量,经过验证的有限元(FE)人体头部模型,用于预测和预防车辆碰撞期间的颅脑损伤(TBI)。 FE模型的几何结构基于志愿者的计算机断层扫描(CT)和磁共振成像(MRI)扫描,与50%男性的人体测量学相近。基于对每个组织的本构模型的当前知识的综合来选择材料和结构特性。通过使用基于表面的流体建模方法,将脑脊髓液(CSF)明确模拟为静液压液。在正面碰撞车辆碰撞中观察到的载荷条件下验证了该模型。这些验证包括颅内压(ICP),脑部运动,冲击力和颅内加速响应,脑部最大的冯·米塞斯应力以及颅骨中的最大主应力。验证中获得的总体结果表明,相对于以前的有限元模型,其生物保真度有所提高,并且大脑中最大冯米塞斯的变化主要是由于CSF模拟的改善。该模型可用于改善脑部和人体测量测试设备的当前伤害标准。

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