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颅骨弯曲特性对动态头部加载过程中大脑反应的影响 - 生物医学2013年

Effect of skull flexural properties on brain response during dynamic head loading - biomed 2013.

作者信息

Harrigan T P, Roberts J C, Ward E E, Carneal C M, Merkle A C

机构信息

The Johns Hopkins University.

出版信息

Biomed Sci Instrum. 2013;49:187-94.

Abstract

The skull-brain complex is typically modeled as an integrated structure, similar to a fluid-filled shell. Under dynamic loads, the interaction of the skull and the underlying brain, cerebrospinal fluid, and other tissue produces the pressure and strain histories that are the basis for many theories meant to describe the genesis of traumatic brain injury. In addition, local bone strains are of interest for predicting skull fracture in blunt trauma. However, the role of skull flexure in the intracranial pressure response to blunt trauma is complex. Since the relative time scales for pressure and flexural wave transmission across the skull are not easily separated, it is difficult to separate out the relative roles of the mechanical components in this system. This study uses a finite element model of the head, which is validated for pressure transmission to the brain, to assess the influence of skull table flexural stiffness on pressure in the brain and on strain within the skull. In a Human Head Finite Element Model, the skull component was modified by attaching shell elements to the inner and outer surfaces of the existing solid elements that modeled the skull. The shell elements were given the properties of bone, and the existing solid elements were decreased so that the overall stiffness along the surface of the skull was unchanged, but the skull table bending stiffness increased by a factor of 2.4. Blunt impact loads were applied to the frontal bone centrally, using LS-Dyna. The intracranial pressure predictions and the strain predictions in the skull were compared for models with and without surface shell elements, showing that the pressures in the mid-anterior and mid-posterior of the brain were very similar, but the strains in the skull under the loads and adjacent to the loads were decreased 15% with stiffer flexural properties. Pressure equilibration to nearly hydrostatic distributions occurred, indicating that the important frequency components for typical impact loading are lower than frequencies based on pressure wave propagation across the skull. This indicates that skull flexure has a local effect on intracranial pressures but that the integrated effect of a dome-like structure under load is a significant part of load transfer in the skull in blunt trauma.

摘要

颅骨 - 脑复合体通常被建模为一个整体结构,类似于一个充满液体的壳体。在动态载荷作用下,颅骨与下方的脑、脑脊液及其他组织的相互作用产生了压力和应变历程,这些历程是许多旨在描述创伤性脑损伤发生机制的理论的基础。此外,局部骨应变对于预测钝性创伤中的颅骨骨折很重要。然而,颅骨弯曲在钝性创伤颅内压反应中的作用很复杂。由于压力和弯曲波穿过颅骨的相对时间尺度不易区分,因此很难区分该系统中机械部件的相对作用。本研究使用了一个头部有限元模型(该模型已针对向脑的压力传递进行了验证)来评估颅骨板弯曲刚度对脑内压力和颅骨内应变的影响。在一个人头有限元模型中,通过将壳单元附着到模拟颅骨的现有实体单元的内表面和外表面来修改颅骨组件。赋予壳单元骨的属性,并减小现有的实体单元,以使颅骨表面的整体刚度不变,但颅骨板弯曲刚度增加了2.4倍。使用LS - Dyna对额骨中央施加钝性冲击载荷。比较了有和没有表面壳单元的模型的颅内压预测值和颅骨内应变预测值,结果表明脑的中前部和中后部的压力非常相似,但具有更硬弯曲特性时,载荷作用下及载荷附近颅骨中的应变降低了15%。压力达到了接近静水分布的平衡,这表明典型冲击载荷的重要频率成分低于基于压力波穿过颅骨传播的频率。这表明颅骨弯曲对颅内压有局部影响,但在载荷作用下穹顶状结构的综合效应是钝性创伤中颅骨载荷传递的重要组成部分。

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