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首页> 外文期刊>Communications in Numerical Methods in Engineering >Effect of cerebrospinal fluid modeling on spherically convergent shear waves during blunt head trauma
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Effect of cerebrospinal fluid modeling on spherically convergent shear waves during blunt head trauma

机译:脑脊液模型对钝性颅脑外伤过程中球形会聚剪切波的影响

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摘要

The MRI-based computational model, previously validated by tagged MRI and harmonic phase imaging analysis technique on in vivo human brain deformation, is used to study transient wave dynamics during blunt head trauma. Three different constitutive models are used for the cerebrospinal fluid: incompressible solid elastic, viscoelastic, and fluid-like elastic using an equation of state model. Three impact cases are simulated, which indicate that the blunt impacts give rise not only to a fast pressure wave but also to a slow, and potentially much more damaging, shear (distortional) wave that converges spherically towards the brain center. The wave amplification due to spherical geometry is balanced by damping due to tissues' viscoelasticity and the heterogeneous brain structure, suggesting a stochastic competition of these 2 opposite effects. It is observed that this convergent shear wave is dependent on the constitutive property of the cerebrospinal fluid, whereas the peak pressure is not as significantly affected.
机译:基于MRI的计算模型先前已通过标签MRI和谐波相位成像分析技术对体内人脑变形进行验证,用于研究钝头颅脑创伤期间的瞬态波动力学。三种不同的本构模型用于脑脊髓液:使用状态方程式的不可压缩固体弹性,粘弹性和类流体弹性。模拟了三种冲击情况,这些结果表明钝性冲击不仅会产生快速的压力波,还会产生缓慢的,可能更具破坏性的剪切(变形)波,这些波向大脑中部呈球形会聚。球形几何形状引起的波放大与组织的粘弹性和异质大脑结构引起的阻尼平衡,表明这两种相反作用的随机竞争。可以看出,这种会聚剪切波取决于脑脊液的本构性质,而峰值压力的影响不那么明显。

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