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THREE-DIMENSIONAL CEREBROSPINAL FLUID FLOW WITHIN THE HUMAN CENTRAL NERVOUS SYSTEM

机译:人中枢神经系统内三维脑脊髓液流动

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This work describes a three-dimensional (3D) numerical simulation of the flow field of the complete enclosed Central Nervous System (CNS) including the ventricular system, the spinal cord and spinal sub-arachnoid space (SAS). Previous works on the topic consider only parts of the complete system imposing artificial boundary conditions at internal cross sections.The computational domain was constructed from MRI data using Materialise Software Mimics. In this work pulsatile velocity inlets in the lateral ventricles, due to the cardiac cycle, were used to simulate the dynamic nature of the CSF, whilst pressure outlets were used to model the areas of CSF re-absorption. A porous medium formulation (Darcy flow) was considered in the SAS to account for the effect of the arachnoid trabeculae within these areas.The simulation was run using the commercial CFD code Fluent using the laminar solver and transient simulation.A maximum CSF velocity was found to be in the region 11.8 mm/s, with a peak pressure drop through the aqueduct of the order of 2.8 Pa corresponding to a calculated peak Reynolds number of 12. CSF pressure at the exits of Magendie and Luschke were found to vary over the cardiac cycle, with pressure at the exits of Luschke being higher than Magendie for large periods of the cycle. CSF was seen to enter the SAS as a laminar jet from the exits of Magendie and Luschke. By only considering the cardiac cycle a very slow CSF motion within the spinal SAS was observed with magnitudes significantly reduced after a depth of 50mm down the column from the exit of Magendie. This result suggests that pulsating wall motion in the region of the spinal cord,due to respiratory effects, needs to be considered in order to predict experimentally observed flow recirculation within the spinal sac. 287 words.
机译:这项工作描述了一个完整的封闭中枢神经系统(CNS),包括心室系统,脊髓和蛛网膜下腔(SAS)的流场的三维(3D)数值模拟。以前关于该主题的工作只考虑了在内部横截面上施加人工边界条件的整个系统的一部分。计算域是使用Materialize Software Mimics从MRI数据构建的。在这项工作中,由于心动周期的缘故,侧脑室的搏动速度入口用于模拟CSF的动态特性,而压力出口用于模拟CSF重吸收的区域。在SAS中考虑了多孔介质配方(Darcy流)来考虑蛛网膜小梁在这些区域内的影响。使用商业CFD代码Fluent使用层流求解器进行仿真并进行瞬态仿真,发现最大CSF速度大约在11.8 mm / s的范围内,通过水管的峰值压力降为2.8 Pa左右,对应于计算出的雷诺数峰值为12。发现Magendie和Luschke出口处的CSF压力随心脏变化在大部分周期内,卢斯凯(Luschke)出口处的压力高于Magendie。人们认为,CSF是从Magendie和Luschke出口出来的层流喷气机进入SAS的。仅考虑心动周期,观察到脊柱SAS内的CSF运动非常缓慢,从Magendie出口向下50mm的深度后,幅度明显减小。该结果表明,由于呼吸作用,需要考虑在脊髓区域内的脉动壁运动,以便预测实验观察到的脊髓囊内的血流再循环。 287个字。

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