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Constitutive Modeling of Brain Parenchyma Taking Account of Strain Rate Dependency with Anisotropy and Application to Brain Injury Analyses

机译:脑干脑干脑干依赖于各向异性依赖性的组成型建模及脑损伤分析

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A reduction in brain disorders owing to traumatic brain injury (TBI) caused by head impacts in traffic accidents is needed. However, the details of the injury mechanism still remain unclear. In past analyses, brain parenchyma of a head finite element (FE) model has generally been modeled using simple isotropic viscoelastic materials. For further understanding of TBI mechanism, in this study we developed a new constitutive model that describes most of the mechanical properties in brain parenchyma such as anisotropy, strain rate dependency, and the characteristic features of the unloading process. Validation of the model was performed against several material test data from the literature with a simple one-element model. The model was also introduced into the human head FE model of THUMS v4.02 and validated against post-mortem human subject (PMHS) test data about brain displacements and intracranial pressures during head impacts. Additionally, several parametric studies were performed to investigate the effect of the shapes of sinusoidal angular acceleration curves inputted to the head on strain distribution and cumulative strain damage measure (CSDM) in the brain. As a result, the proposed model accurately reproduced stress-strain curves in experimental data and described the brain displacements and pressures in PMHS test data. Furthermore, the results of parametric studies indicated that not only the peak value of the loaded angular acceleration but also the impact duration affected the strain distribution and CSDM. The proposed constitutive model has the potential to provide a better understanding of the TBI mechanism and more accurate injury prediction.
机译:需要由于脑部损伤(TBI)的脑疾病减少,所以需要在交通事故中造成的脑部损伤(TBI)。但是,伤害机制的细节仍然不清楚。在过去的分析中,头部有限元(Fe)模型的脑实质通常使用简单的各向同性粘弹性材料进行建模。为了进一步了解TBI机制,在本研究中,我们开发了一种新的本组成型模型,该组成型模型描述了脑实质中的大部分机械性能,例如各向异性,应变率依赖性以及卸载过程的特征特征。使用简单的单元素模型对来自文献的几种材料测试数据进行模型的验证。该模型还被引入Thums V4.02的人体头部FE模型,并针对验尸后的人类受试者(PMHS)测试数据有关脑移位和头部冲击期间的颅内压力。另外,进行了几种参数研究以研究脑中输入到头部的正弦角加速度曲线的形状和累积应变损伤量(CSDM)的效果。结果,所提出的模型在实验数据中精确再现应力 - 应变曲线,并描述了PMHS测试数据中的脑位移和压力。此外,参数研究结果表明,不仅是加载的角度加速度的峰值,而且影响碰撞持续时间影响了应变分布和CSDM。所提出的本构模型具有更好地理解TBI机制和更准确的损伤预测。

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