首页> 外文期刊>JSME International Journal. Series C, Mechanical Systems, Machine Elements and Manufacturing >Parametric Study of Effects of Brain-Skull Boundary Conditions and Brain Material Properties on Responses of Simplified Finite Element Brain Model under Angular Acceleration Impulse in Sagittal Plane
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Parametric Study of Effects of Brain-Skull Boundary Conditions and Brain Material Properties on Responses of Simplified Finite Element Brain Model under Angular Acceleration Impulse in Sagittal Plane

机译:矢状面角加速度脉冲下脑-颅边界条件和脑材料特性对简化有限元脑模型响应的影响的参数研究

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摘要

In the present study, the effects of brain-skull boundary conditions on the responses of a simplified three-dimensional finite element model of a thin sagittal slice of the human head were investigated. The model was excited using a time-dependent angular velocity with a maximum of 16 rad/s (maximum angular acceleration, around 5 000 rad/s~2). The present study was conducted using the non-linear explicit finite element code LS-DYNA. Three methods for simulation of the brain-skull boundary conditions were investigated: 1) with brain rigidly attached to the skull; 2) using frictionless sliding contact allowing no separation between the brain and skull; and 3) direct simulation of cerebrospinal fluid CSF using a layer of eight-noded solid elements with fluid-like properties. Varying the method for simulation of the brain-skull boundary conditions appreciably affected the brain responses. However, varying parameters of a given method, such as viscosity of cerebrospinal fluid CSF and CSF -skull friction coefficient, exerted only minor effects on these responses. The present results suggest that accurate simulation of brain-skull boundary conditions requires direct representation of the subarachnoidal space/CSF as a fluid-like medium.
机译:在本研究中,研究了脑-颅边界条件对人的矢状薄片的简化三维有限元模型的响应的影响。使用与时间相关的最大16 rad / s的角速度(最大角加速度,约5000 rad / s〜2)来激发模型。本研究是使用非线性显式有限元代码LS-DYNA进行的。研究了三种模拟脑-颅边界条件的方法:1)将脑牢固地附着在颅骨上; 2)使用无摩擦滑动接触,使大脑和颅骨之间不分离;和3)使用具有流体样特性的八节点固体元素层直接模拟脑脊液CSF。改变大脑-颅骨边界条件的模拟方法会明显影响大脑的反应。但是,给定方法的各种参数(例如脑脊液CSF的粘度和CSF-颅骨摩擦系数)对这些响应的影响很小。目前的结果表明,脑-颅骨边界条件的准确模拟需要蛛网膜下腔/ CSF作为液体样介质的直接表示。

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