Cargando…

2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow

Many diseases are related to cerebrospinal fluid (CSF) hydrodynamics. Therefore, understanding the hydrodynamics of CSF flow and intracranial pressure is helpful for obtaining deeper knowledge of pathological processes and providing better treatments. Furthermore, engineering a reliable computationa...

Descripción completa

Detalles Bibliográficos
Autores principales: Masoumi, Nafiseh, Framanzad, F., Zamanian, Behnam, Seddighi, A.S., Moosavi, M.H., Najarian, S., Bastani, Dariush
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Iranian Neuroscience Society 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4202551/
https://www.ncbi.nlm.nih.gov/pubmed/25337330
_version_ 1782340309185724416
author Masoumi, Nafiseh
Framanzad, F.
Zamanian, Behnam
Seddighi, A.S.
Moosavi, M.H.
Najarian, S.
Bastani, Dariush
author_facet Masoumi, Nafiseh
Framanzad, F.
Zamanian, Behnam
Seddighi, A.S.
Moosavi, M.H.
Najarian, S.
Bastani, Dariush
author_sort Masoumi, Nafiseh
collection PubMed
description Many diseases are related to cerebrospinal fluid (CSF) hydrodynamics. Therefore, understanding the hydrodynamics of CSF flow and intracranial pressure is helpful for obtaining deeper knowledge of pathological processes and providing better treatments. Furthermore, engineering a reliable computational method is promising approach for fabricating in vitro models which is essential for inventing generic medicines. A Fluid-Solid Interaction (FSI)model was constructed to simulate CSF flow. An important problem in modeling the CSF flow is the diastolic back flow. In this article, using both rigid and flexible conditions for ventricular system allowed us to evaluate the effect of surrounding brain tissue. Our model assumed an elastic wall for the ventricles and a pulsatile CSF input as its boundary conditions. A comparison of the results and the experimental data was done. The flexible model gave better results because it could reproduce the diastolic back flow mentioned in clinical research studies. The previous rigid models have ignored the brain parenchyma interaction with CSF and so had not reported the back flow during the diastolic time. In this computational fluid dynamic (CFD) analysis, the CSF pressure and flow velocity in different areas were concordant with the experimental data.
format Online
Article
Text
id pubmed-4202551
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Iranian Neuroscience Society
record_format MEDLINE/PubMed
spelling pubmed-42025512014-10-21 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow Masoumi, Nafiseh Framanzad, F. Zamanian, Behnam Seddighi, A.S. Moosavi, M.H. Najarian, S. Bastani, Dariush Basic Clin Neurosci Research Papers Many diseases are related to cerebrospinal fluid (CSF) hydrodynamics. Therefore, understanding the hydrodynamics of CSF flow and intracranial pressure is helpful for obtaining deeper knowledge of pathological processes and providing better treatments. Furthermore, engineering a reliable computational method is promising approach for fabricating in vitro models which is essential for inventing generic medicines. A Fluid-Solid Interaction (FSI)model was constructed to simulate CSF flow. An important problem in modeling the CSF flow is the diastolic back flow. In this article, using both rigid and flexible conditions for ventricular system allowed us to evaluate the effect of surrounding brain tissue. Our model assumed an elastic wall for the ventricles and a pulsatile CSF input as its boundary conditions. A comparison of the results and the experimental data was done. The flexible model gave better results because it could reproduce the diastolic back flow mentioned in clinical research studies. The previous rigid models have ignored the brain parenchyma interaction with CSF and so had not reported the back flow during the diastolic time. In this computational fluid dynamic (CFD) analysis, the CSF pressure and flow velocity in different areas were concordant with the experimental data. Iranian Neuroscience Society 2013 /pmc/articles/PMC4202551/ /pubmed/25337330 Text en Copyright © 2013 Iranian Neuroscience Society http://creativecommons.org/licenses/by-nc/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported License which allows users to read, copy, distribute and make derivative works for non-commercial purposes from the material, as long as the author of the original work is cited properly.
spellingShingle Research Papers
Masoumi, Nafiseh
Framanzad, F.
Zamanian, Behnam
Seddighi, A.S.
Moosavi, M.H.
Najarian, S.
Bastani, Dariush
2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title_full 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title_fullStr 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title_full_unstemmed 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title_short 2D Computational Fluid Dynamic Modeling of Human Ventricle System Based on Fluid-Solid Interaction and Pulsatile Flow
title_sort 2d computational fluid dynamic modeling of human ventricle system based on fluid-solid interaction and pulsatile flow
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4202551/
https://www.ncbi.nlm.nih.gov/pubmed/25337330
work_keys_str_mv AT masouminafiseh 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT framanzadf 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT zamanianbehnam 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT seddighias 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT moosavimh 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT najarians 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow
AT bastanidariush 2dcomputationalfluiddynamicmodelingofhumanventriclesystembasedonfluidsolidinteractionandpulsatileflow