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A physical model for brain ventricle dynamics

机译:脑室动力学的物理模型

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Brain ventricles (Rouviere and Delmas 2002) are four cavities filled with a liquid which they secrete, the cerebrospinal fluid (CSF). This fluid flows from ventricles to both the spinal cord and the subarachnoid spaces (around the brain) to eventually return to the bloodstream. As ventricles lose their ability to regulate the CSF pressure, serious brain pathologies called hydrocephalus can occur (Greenberg 1990). Characterised by a dilation of the ventricular space, these diseases can be deadly if not treated. The work of our team consists in a physical study of intracranial mechanics, taking into account the coupling of ventricular dynamics to the brain and surrounding compartments, be it of mechanical nature, or through fluid exchanges. We first address the problem from a theoretical view, making use of the fundamental laws of thermodynamics, hydrodynamics and the theory of elasticity. We then numerically assess the leading equations with a homemade code written on MATLAB. Dynamical instabilities are revealed, inducing an 'explosion' or a contraction of the ventricular space, making a possible link with the causes of hydrocephalus and the slit ventricle syndrome (Greenberg 1990).
机译:脑室(Rouviere和Delmas 2002)是四个腔,它们充满了分泌的液体,即脑脊液(CSF)。这种液体从心室流到脊髓和蛛网膜下腔(大脑周围),最终返回到血液。当心室失去调节CSF压力的能力时,会发生称为脑积水的严重脑部疾病(Greenberg 1990)。这些疾病的特征在于心室空间的扩张,如果不加以治疗,可能会致命。我们团队的工作包括对颅内力学的物理研究,要考虑到心室动力学与大脑及周围隔室的耦合,无论是力学性质还是通过流体交换。首先,我们从理论的角度出发,利用热力学,流体力学和弹性理论的基本定律来解决这个问题。然后,我们使用在MATLAB上编写的自制代码对领先的方程进行数值评估。揭示了动态的不稳定性,引起心室空间的“爆炸”或收缩,从而可能与脑积水和狭缝心室综合征的病因相关(Greenberg 1990)。

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