Title :
Mathematical Modeling of CSF Pulsatile Hydrodynamics Based on Fluid–Solid Interaction
Author :
Masoumi, Nafiseh ; Bastani, Dariush ; Najarian, Siamak ; Ganji, Fariba ; Farmanzad, Farhad ; Seddighi, Amir Saeed
Author_Institution :
Chem. & Pet. Eng. Dept., Sharif Univ. of Technol., Tehran, Iran
fDate :
6/1/2010 12:00:00 AM
Abstract :
Intracranial pressure (ICP) is derived from cerebral blood pressure and cerebrospinal fluid (CSF) circulatory dynamics and can be affected in the course of many diseases. Computer analysis of the ICP time pattern plays a crucial role in the diagnosis and treatment of those diseases. This study proposes the application of Linninger et al.´s [IEEE Trans. Biomed. Eng. , vol. 52, no. 4, pp. 557-565, Apr. 2005] fluid-solid interaction model of CSF hydrodynamic in ventricular system based on our clinical data from a group of patients with brain parenchyma tumor. The clinical experiments include the arterial blood pressure (ABP), venous blood pressure, and ICP in the subarachnoid space (SAS). These data were used as inputs to the model that predicts the intracranial dynamic phenomena. In addition, the model has been modified by considering CSF pulsatile production rate as the major factor of CSF motion. The approximations of ventricle enlargement, CSF pressure distribution in the ventricular system and CSF velocity magnitude in the aqueduct and foramina were obtained in this study. The observation of reversal flow in the CSF flow pattern due to brain tissue compression is another finding in our investigation. Based on the experimental results, no existence of large transmural pressure differences were found in the brain system. The measured pressure drop in the ventricular system was less than 5 Pa. Moreover, the CSF flow pattern, ICP distribution, and velocity magnitude were in good agreement with the published models and CINE (phase-contrast magnetic resonance imaging) experiments, respectively.
Keywords :
biological tissues; blood flow measurement; blood pressure measurement; brain; neurophysiology; physiological models; CSF pressure distribution; CSF pulsatile hydrodynamics; aqueduct; arterial blood pressure; brain parenchyma tumor; brain system; brain tissue compression; cerebrospinal fluid circulatory dynamics; fluid-solid interaction model; foramania; intracranial dynamic phenomena; phase-contrast magnetic resonance imaging; reversal flow; subarachnoid space; transmural pressure; venous blood pressure; ventricle enlargement; ventricular system; Cerebrospinal fluid; first principle law; flow pattern; intracranial pressure (ICP); Brain Neoplasms; Cerebral Ventricles; Cerebrospinal Fluid; Computer Simulation; Humans; Intracranial Pressure; Models, Neurological; Pulsatile Flow;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2009.2037975