论文标题
大脑渡槽中振荡流的模型
A model for the oscillatory flow in the cerebral aqueduct
论文作者
论文摘要
本文介绍了脑脊液在西尔维乌斯(Sylvius)的渡槽中的脉动运动,这是一种细长的运河,连接了大脑的第三和第四个心室。在临床应用中需要特别注意流量的瞬时值与介入压力差之间的关系,以通过前者的直接磁呼声测量值对后者进行间接评估。用于简化流量描述的运河细长性的魔力顺序分析。发现边界层近似适用于细长的运河,其中振荡流的特征在于触及长度与横向扩散时间相当的运河长度和周期。相比之下,在第一个近似值中发现了连接渡槽与两个心室的非倾斜开放区域中的流量与两个心室的流动。通过与直接数值模拟的结果进行比较来验证所得的简化描述。该模型用于研究介入压力与中风长度之间的关系,在临床应用中感兴趣的参数范围内。
This paper addresses the pulsating motion of cerebrospinal fluid in the aqueduct of Sylvius, a slender canal connecting the third and fourth ventricles of the brain. Specific attention is given to the relation between the instantaneous values of the flow rate and the interventricular pressure difference, needed in clinical applications to enable indirect evaluations of the latter from direct magnetic-resonance measurements of the former. An order-of-magnitude analysis accounting for the slenderness of the canal is used in simplifying the flow description. The boundary-layer approximation is found to be applicable in the slender canal, where the oscillating flow is characterized by stroke lengths comparable to the canal length and periods comparable to the transverse diffusion time. By way of contrast, the flow in the non-slender opening regions connecting the aqueduct with the two ventricles is found to be inviscid and quasi-steady in the first approximation. The resulting simplified description is validated by comparison with results of direct numerical simulations. The model is used to investigate the relation between the interventricular pressure and the stroke length, in parametric ranges of interest in clinical applications.