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Comparison of Brain Tissue Material Finite Element Models Based On Threshold for Traumatic Brain Injury

机译:基于阈值的颅脑外伤性脑组织材料有限元模型的比较

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Blast traumatic brain injury (bTBI) may happen due to sudden blast and high-frequency loads. Due to the moral issues and the burden of experimental approaches, using computational methods such as finite element analysis (FEA) can be effective. Several finite element studies have focused on the effects of TBI to anticipate and understand the brain dynamic response. One of the most important factors in every FEA study of bTBI is the accurate modeling of brain tissue material properties. The main goal of this study is a comparison of different brain tissue constitutive models to understand the dynamic response of brain under an identical blast load. The multi-material FE modeling of the human head has several limitations such as its complexity and consequently high computational costs. Therefore, a spherical head model is modeled which suggests more straightforward observation/understanding of the FE modeling of skull (solid), CSF (fluid), and the brain tissue. Three different material models are considered for the brain tissue, namely hyperelastic, viscoelastic, and hyperviscoelastic. Brain dynamic responses are studied in terms of the head kinematics (linear acceleration), intracranial pressure (ICP), shear stress, and maximum mechanical strain. Our results showed that the hyperelastic model predicts larger ICP and shear than other constitutive brain tissue models. However, all material models predicted similar shear strain and head accelerations.
机译:由于突然的爆炸和高频负荷,可能会发生爆炸性颅脑损伤(bTBI)。由于道德问题和实验方法的负担,使用诸如有限元分析(FEA)之类的计算方法可能是有效的。一些有限元研究集中在TBI的作用上,以预期和了解大脑动态反应。在bTBI的所有FEA研究中,最重要的因素之一是对脑组织材料特性的准确建模。这项研究的主要目的是比较不同的大脑组织本构模型,以了解在相同爆炸载荷下大脑的动态反应。人头的多材料有限元建模具有一些局限性,例如它的复杂性以及因此的高计算成本。因此,对球形头部模型进行建模,这建议对头骨(实体),CSF(流体)和脑组织的有限元建模进行更直接的观察/理解。脑组织考虑了三种不同的材料模型,即超弹性,粘弹性和超粘弹性。从头部运动学(线性加速度),颅内压(ICP),剪切应力和最大机械应变等方面研究了大脑的动态响应。我们的结果表明,与其他本构性脑组织模型相比,超弹性模型预测的ICP和剪切力更大。但是,所有材料模型都预测了相似的剪切应变和头部加速度。

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