Title :
Numerical study of the cerebrospinal fluid (CSF) dynamics under quasistatic condition during a cardiac cycle
Author :
Fin, Loïc ; Grebe, Reinhard ; Baledent, O. ; Idy-peretti, Ana
Author_Institution :
Lab. of Biophys. & Image Process., Univ. of Picardie Jules Vemes, Amiens, France
Abstract :
We present a method to perform a numerical simulation of the flow dynamics of cerebrospinal fluid (CSF) based on anatomical magnetic resonance images (MRI). The computational fluid dynamics (CFD) software, written in language C, integrates different numerical schemes to solve the governing equations. The time derivatives were discretized using the Crank-Nicolson scheme. The equation of continuity was modified by introducing an artificial compressibility and discretized by a finite difference scheme. The meshed boundary of the CSF was immersed in a marker-and-cell staggered grid to take into account the fluid-structure interactions. Equations of hydrodynamics were solved with an iterative method under different quasi-static conditions. The anatomical basis of our simulations was generated from individual MRI scans. The surface of the anatomical flow channels of interest was extracted by segmentation and triangulated. In parallel to the acquisition of the anatomical data, CSF flow has been measured by MRI. To characterize a whole cardiac cycle, sixteen equidistant velocity measurements have been performed. In addition, a home made software was implemented to visualize computed data (velocities, pressure).
Keywords :
biological fluid dynamics; biomedical MRI; brain models; cardiology; computational fluid dynamics; finite difference methods; image segmentation; iterative methods; medical image processing; C language; CFD software; Crank-Nicolson scheme; anatomical basis; anatomical flow channels; anatomical magnetic resonance images; aqueduct of Sylvius; artificial compressibility; brain-CSF interface; cardiac cycle; cerebrospinal fluid dynamics; computational fluid dynamics; equation of continuity; equidistant velocity measurements; finite difference scheme; flow dynamics; fluid-structure interactions; governing equations; home made software; hydrodynamics; individual MRI scans; iterative method; marker-and-cell staggered grid; meshed boundary; numerical simulation; parenchyma; pressure; quasi-static conditions; quasistatic condition; segmentation; time derivatives; triangulation; velocities; whole cardiac cycle; Computational fluid dynamics; Difference equations; Differential equations; Finite difference methods; Fluid dynamics; Image coding; Magnetic liquids; Magnetic resonance; Magnetic resonance imaging; Numerical simulation;
Conference_Titel :
Engineering in Medicine and Biology Society, 2001. Proceedings of the 23rd Annual International Conference of the IEEE
Print_ISBN :
0-7803-7211-5
DOI :
10.1109/IEMBS.2001.1018909