A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses

An unsteady mathematical model to study the characteristics of blood flowing through an arterial segment in the presence of a couple of stenoses with surface irregularities is developed. The flow is treated to be axisymmetric, with an outline of the stenoses obtained from a three dimensional casting...

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Main Authors: Mustapha, Norzieha, Mandal, Prashanta Kumar, Johnston, Peter Rex, Amin, Norsarahaida S.
Format: Article
Language:English
Published: Elsevier Inc. 2010
Subjects:
Online Access:http://eprints.utm.my/id/eprint/22820/1/NorziehaMustapha2010_ANumericalSimulationofUnsteadyBloodFlow.pdf
http://eprints.utm.my/id/eprint/22820/
http://dx.doi.org/10.1016/j.apm.2009.09.008
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spelling my.utm.228202018-10-21T04:29:41Z http://eprints.utm.my/id/eprint/22820/ A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses Mustapha, Norzieha Mandal, Prashanta Kumar Johnston, Peter Rex Amin, Norsarahaida S. Q Science (General) An unsteady mathematical model to study the characteristics of blood flowing through an arterial segment in the presence of a couple of stenoses with surface irregularities is developed. The flow is treated to be axisymmetric, with an outline of the stenoses obtained from a three dimensional casting of a mildly stenosed artery [1], so that the flow effectively becomes two-dimensional. The governing equations of motion accompanied by appropriate choice of boundary and initial conditions are solved numerically by MAC (Marker and Cell) method in cylindrical polar coordinate system in staggered grids and checked numerical stability with desired degree of accuracy. The pressure-Poisson equation has been solved by successive-over-relaxation (SOR) method and the pressure-velocity correction formulae have been derived. The flexibility of the arterial wall has also been accounted for in the present investigation. Further, in-depth study in the flow pattern reveals that the separation Reynolds number for the multi-irregular stenoses is lower than those for cosine-shaped stenoses and a long single irregular stenosis. The present results predict the excess pressure drop across the cosine stenoses than the irregular ones and show quite consistency with several existing results in the literature which substantiate sufficiently to validate the applicability of the model under consideration. Elsevier Inc. 2010-06 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/22820/1/NorziehaMustapha2010_ANumericalSimulationofUnsteadyBloodFlow.pdf Mustapha, Norzieha and Mandal, Prashanta Kumar and Johnston, Peter Rex and Amin, Norsarahaida S. (2010) A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses. Applied Mathematical Modelling, 34 (6). 1559 - 1573. ISSN 0307-904X http://dx.doi.org/10.1016/j.apm.2009.09.008 DOI: 10.1016/j.apm.2009.09.008
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic Q Science (General)
spellingShingle Q Science (General)
Mustapha, Norzieha
Mandal, Prashanta Kumar
Johnston, Peter Rex
Amin, Norsarahaida S.
A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
description An unsteady mathematical model to study the characteristics of blood flowing through an arterial segment in the presence of a couple of stenoses with surface irregularities is developed. The flow is treated to be axisymmetric, with an outline of the stenoses obtained from a three dimensional casting of a mildly stenosed artery [1], so that the flow effectively becomes two-dimensional. The governing equations of motion accompanied by appropriate choice of boundary and initial conditions are solved numerically by MAC (Marker and Cell) method in cylindrical polar coordinate system in staggered grids and checked numerical stability with desired degree of accuracy. The pressure-Poisson equation has been solved by successive-over-relaxation (SOR) method and the pressure-velocity correction formulae have been derived. The flexibility of the arterial wall has also been accounted for in the present investigation. Further, in-depth study in the flow pattern reveals that the separation Reynolds number for the multi-irregular stenoses is lower than those for cosine-shaped stenoses and a long single irregular stenosis. The present results predict the excess pressure drop across the cosine stenoses than the irregular ones and show quite consistency with several existing results in the literature which substantiate sufficiently to validate the applicability of the model under consideration.
format Article
author Mustapha, Norzieha
Mandal, Prashanta Kumar
Johnston, Peter Rex
Amin, Norsarahaida S.
author_facet Mustapha, Norzieha
Mandal, Prashanta Kumar
Johnston, Peter Rex
Amin, Norsarahaida S.
author_sort Mustapha, Norzieha
title A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
title_short A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
title_full A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
title_fullStr A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
title_full_unstemmed A numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
title_sort numerical simulation of unsteady blood flow through multi-irregular arterial arterial stenoses
publisher Elsevier Inc.
publishDate 2010
url http://eprints.utm.my/id/eprint/22820/1/NorziehaMustapha2010_ANumericalSimulationofUnsteadyBloodFlow.pdf
http://eprints.utm.my/id/eprint/22820/
http://dx.doi.org/10.1016/j.apm.2009.09.008
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score 13.15806