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The Parametric Studies of Brain Materials in the Analysis of Head Impact

机译:脑材质参数研究在脑部撞击分析中

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Crash analysis and head injury biomechanics are very important fields in biomedical research due to the devastating consequences of traumatic brain injuries (TBI). Complex geometry and constitutive models of multiple materials can be combined with the loading conditions in finite element head model to study the dynamic behavior of brain and the TBI. In such a modeling, the proper regional material properties of brain tissues are important. Brain tissues material properties have not been finally determined by experiments, and large variations in the test data still exist and the data is very much situation-dependent. Therefore, parametric analysis should be performed to study the relationship between the material properties and the brain response. The main purpose of presenting this paper is to identify the influence of material constitutive properties on brain impact response, to search for an improved material model and to arrive at a better correlation between the finite element model and the cadaver tests data. In this paper a 3-D nonlinear finite element method will be used to study the dynamic response of the human head under dynamic loading. The finite element formulation includes detailed model of the skull, brain, cerebral-spinal fluid (CSF), dura mater, pia mater, falx and tentorium membranes. The brain is modeled as linear viscoelastic material, whereas linear elastic material behavior is assumed for all the other tissue components. The proper contact and compatibility conditions between different components have been implemented in the modeling procedure. The results for the direct frontal impacts will be shown for three groups of material parameters. The parametrical analysis of tissue material models allows to examines the accuracy of three different set of material parameters for brain in a comparison with the prediction of the head dynamic response of Nahum's human cadaver direct impact experiment. Three sets of suggested material parameters are examined. It is concluded that although all three groups of material models will follow the dynamic behavior of the head and brain behavior, but the parametric data considered in this paper have a closer resemblance to the experimental behavior.
机译:由于创伤性脑损伤(TBI)的破坏性后果,崩溃分析和头部损伤生物力学是生物医学研究中的非常重要的领域。复杂的几何形状和多种材料的本构模型可以与有限元头模型中的装载条件相结合,以研究大脑和TBI的动态行为。在这种建模中,脑组织的适当区域材料性质是重要的。脑组织材料特性尚未通过实验确定,并且仍然存在测试数据的大变化,并且数据非常依赖。因此,应执行参数分析以研究材料特性与脑响应之间的关系。提出本文的主要目的是识别材料本构性质对脑冲击响应的影响,以寻找改进的材料模型,并在有限元模型和尸体测试数据之间获得更好的相关性。本文将使用3-D非线性有限元方法来研究动态载荷下人体的动态响应。有限元制剂包括头骨,脑,脑脊髓液(CSF),硬脑膜,PIA母体,Falx和呼吸膜的详细模型。大脑被建模为线性粘弹性材料,而线性弹性材料行为被假定为所有其他组织成分。在建模过程中已经实施了不同组件之间的适当接触和兼容性条件。直接正面影响的结果将显示三组材料参数。组织材料模型的参数分析允许在与Nahum人类尸体直接冲击实验的头部动态响应的预测相比中检查大脑的三种不同材料参数的准确性。检查了三套建议的材料参数。结论是,尽管所有三组材料模型都将遵循头部和大脑行为的动态行为,但本文考虑的参数数据与实验行为更仔细。

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