Modeling and Simulation of Head Trauma Utilizing White Matter Properties from Magnetic Resonance Elastography

A. Madhukar, M. Ostoja-Starzewski
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引用次数: 7

Abstract

Tissues of the brain, especially white matter, are extremely heterogeneous—with constitutive responses varying spatially. In this paper, we implement a high-resolution Finite Element (FE) head model where heterogeneities of white matter structures are introduced through Magnetic Resonance Elastography (MRE) experiments. Displacement of white matter under shear wave excitation is captured and the material properties determined through an inversion algorithm are incorporated in the FE model via a two-term Ogden hyper-elastic material model. This approach is found to improve model predictions when compared to experimental results. In the first place, mechanical response in the cerebrum near stiff structures such as the corpus callosum and corona radiata are markedly different compared with a homogenized material model. Additionally, the heterogeneities introduce additional attenuation of the shear wave due to wave scattering within the cerebrum.
利用磁共振弹性成像的白质特性建模和模拟头部创伤
大脑的组织,尤其是白质,是非常不均匀的,其本构反应在空间上是不同的。在本文中,我们实现了一个高分辨率的有限元(FE)头部模型,其中通过磁共振弹性成像(MRE)实验引入了白质结构的异质性。捕获剪切波激励下白质的位移,通过反演算法确定的材料性质通过两项Ogden超弹性材料模型纳入有限元模型。与实验结果相比,这种方法可以改善模型预测。首先,与均质材料模型相比,大脑中靠近硬结构(如胼胝体和辐射冠)的机械反应明显不同。此外,由于横波在大脑内的散射,这种非均质性引入了横波的额外衰减。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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