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PMID: 29786774 Published · ppublish English Journal Article

Computational Fluid Dynamics Modeling of the Human Pulmonary Arteries with Experimental Validation.

Annals of biomedical engineering ·Vol. 46 ·No. 9 ·2018-09-00 ·页码 1309-1324

Bordones AD, Leroux M, Kheyfets VO, Wu YA, Chen CY, Finol EA

Abstract

Pulmonary hypertension (PH) is a chronic progressive disease characterized by elevated pulmonary arterial pressure, caused by an increase in pulmonary arterial impedance. Computational fluid dynamics (CFD) can be used to identify metrics representative of the stage of PH disease. However, experimental validation of CFD models is often not pursued due to the geometric complexity of the model or uncertainties in the reproduction of the required flow conditions. The goal of this work is to validate experimentally a CFD model of a pulmonary artery phantom using a particle image velocimetry (PIV) technique. Rapid prototyping was used for the construction of the patient-specific pulmonary geometry, derived from chest computed tomography angiography images. CFD simulations were performed with the pulmonary model with a Reynolds number matching those of the experiments. Flow rates, the velocity field, and shear stress distributions obtained with the CFD simulations were compared to their counterparts from the PIV flow visualization experiments. Computationally predicted flow rates were within 1% of the experimental measurements for three of the four branches of the CFD model. The mean velocities in four transversal planes of study were within 5.9 to 13.1% of the experimental mean velocities. Shear stresses were qualitatively similar between the two methods with some discrepancies in the regions of high velocity gradients. The fluid flow differences between the CFD model and the PIV phantom are attributed to experimental inaccuracies and the relative compliance of the phantom. This comparative analysis yielded valuable information on the accuracy of CFD predicted hemodynamics in pulmonary circulation models.

Keywords
Blood flow Computational fluid dynamics Particle image velocimetry Pulmonary hypertension Shear stress
MeSH 主题词
Computer Simulation Humans Hydrodynamics Models, Cardiovascular Phantoms, Imaging Printing, Three-Dimensional Pulmonary Artery/physiology Rheology
作者与单位
共 6 位作者,点击展开单位 / ORCID
Bordones Alifer D
UTSA/UTHSA Joint Graduate Program in Biomedical Engineering, University of Texas at San Antonio, San Antonio, TX, USA.
Leroux Matthew
UTSA/UTHSA Joint Graduate Program in Biomedical Engineering, University of Texas at San Antonio, San Antonio, TX, USA.
Kheyfets Vitaly O
Department of Bioengineering, Anschutz Medical Campus, University of Colorado Denver, Aurora, CO, USA.
Wu Yu-An
Department of Mechanical Engineering, National Chen Kung University, Tainan, 701, Taiwan.
Chen Chia-Yuan
Department of Mechanical Engineering, National Chen Kung University, Tainan, 701, Taiwan.
Finol Ender A
UTSA/UTHSA Joint Graduate Program in Biomedical Engineering, University of Texas at San Antonio, San Antonio, TX, USA. [email protected]. | Department of Mechanical Engineering, University of Texas at San Antonio, One UTSA Circle, Room EB 3.04.08, San Antonio, TX, 78249, USA. [email protected].
Article Info
Journal
Annals of biomedical engineering
Abbr.
Ann Biomed Eng
ISSN
1573-9686
Corresponding email
Published
2018-09-00
电子出版
2018-00-21
页码
1309-1324
Language
English
Country/Region
United States
NLM ID
0361512
基金资助
NHLBI NIH HHS · R01 HL121293 · United States
American Heart Association · 14GRNT19020017
National Institutes of Health · R01HL121293
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