Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics

This study proposes a mathematical approach and numerical experiment for a simple solution of cardiac blood flow to the heart's blood vessels. A mathematical model of human blood flow through arterial branches was studied and calculated using the Navier-Stokes partial differential equation with...

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Published in:BAGHDAD SCIENCE JOURNAL
Main Authors: Defrianto; Saktioto, Toto; Soerbakti, Yan; Thoibah, Andika; Meyzia, Bunga; Syahputra, Romi Fadli; Okfalisa; Syamsudhuha; Irawan, Dedi; Hairi, Haryana
Format: Article
Language:English
Published: COLL SCIENCE WOMEN, UNIV BAGHDAD 2023
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001348751300004
author Defrianto; Saktioto
Toto; Soerbakti
Yan; Thoibah
Andika; Meyzia
Bunga; Syahputra
Romi Fadli; Okfalisa; Syamsudhuha; Irawan
Dedi; Hairi
Haryana
spellingShingle Defrianto; Saktioto
Toto; Soerbakti
Yan; Thoibah
Andika; Meyzia
Bunga; Syahputra
Romi Fadli; Okfalisa; Syamsudhuha; Irawan
Dedi; Hairi
Haryana
Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
Science & Technology - Other Topics
author_facet Defrianto; Saktioto
Toto; Soerbakti
Yan; Thoibah
Andika; Meyzia
Bunga; Syahputra
Romi Fadli; Okfalisa; Syamsudhuha; Irawan
Dedi; Hairi
Haryana
author_sort Defrianto; Saktioto
spelling Defrianto; Saktioto, Toto; Soerbakti, Yan; Thoibah, Andika; Meyzia, Bunga; Syahputra, Romi Fadli; Okfalisa; Syamsudhuha; Irawan, Dedi; Hairi, Haryana
Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
BAGHDAD SCIENCE JOURNAL
English
Article
This study proposes a mathematical approach and numerical experiment for a simple solution of cardiac blood flow to the heart's blood vessels. A mathematical model of human blood flow through arterial branches was studied and calculated using the Navier-Stokes partial differential equation with finite element analysis (FEA) approach. Furthermore, FEA is applied to the steady flow of two-dimensional viscous liquids through different geometries. The validity of the computational method is determined by comparing numerical experiments with the results of the analysis of different functions. Numerical analysis showed that the highest blood flow velocity of 1.22 cm/s occurred in the center of the vessel which tends to be laminar and is influenced by a low viscosity factor of 0.0015 Pa.s. In addition, circulation throughout the blood vessels occurs due to high pressure in the heart and the pressure becomes lower when it returns from the blood vessels at the same parameters. Finally, when the viscosity is high, the extreme magnitudes of blood flow tend toward the vessel wall at approximately the same velocity and radius of the gradient.
COLL SCIENCE WOMEN, UNIV BAGHDAD
2078-8665
2411-7986
2023
20
5
10.21123/bsj.2023.7076
Science & Technology - Other Topics
gold
WOS:001348751300004
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001348751300004
title Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
title_short Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
title_full Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
title_fullStr Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
title_full_unstemmed Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
title_sort Numerical Investigation of Physical Parameters in Cardiac Vessels as a New Medical Support Science for Complex Blood Flow Characteristics
container_title BAGHDAD SCIENCE JOURNAL
language English
format Article
description This study proposes a mathematical approach and numerical experiment for a simple solution of cardiac blood flow to the heart's blood vessels. A mathematical model of human blood flow through arterial branches was studied and calculated using the Navier-Stokes partial differential equation with finite element analysis (FEA) approach. Furthermore, FEA is applied to the steady flow of two-dimensional viscous liquids through different geometries. The validity of the computational method is determined by comparing numerical experiments with the results of the analysis of different functions. Numerical analysis showed that the highest blood flow velocity of 1.22 cm/s occurred in the center of the vessel which tends to be laminar and is influenced by a low viscosity factor of 0.0015 Pa.s. In addition, circulation throughout the blood vessels occurs due to high pressure in the heart and the pressure becomes lower when it returns from the blood vessels at the same parameters. Finally, when the viscosity is high, the extreme magnitudes of blood flow tend toward the vessel wall at approximately the same velocity and radius of the gradient.
publisher COLL SCIENCE WOMEN, UNIV BAGHDAD
issn 2078-8665
2411-7986
publishDate 2023
container_volume 20
container_issue 5
doi_str_mv 10.21123/bsj.2023.7076
topic Science & Technology - Other Topics
topic_facet Science & Technology - Other Topics
accesstype gold
id WOS:001348751300004
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001348751300004
record_format wos
collection Web of Science (WoS)
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