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PMID: 25256102 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Validation Study

A novel patient-specific model to compute coronary fractional flow reserve.

Progress in biophysics and molecular biology ·Vol. 116 ·No. 1 ·2014-09-00 ·页码 48-55

Kwon SS, Chung EC, Park JS, Kim GT, Kim JW, Kim KH, Shin ES, Shim EB

Abstract

The fractional flow reserve (FFR) is a widely used clinical index to evaluate the functional severity of coronary stenosis. A computer simulation method based on patients' computed tomography (CT) data is a plausible non-invasive approach for computing the FFR. This method can provide a detailed solution for the stenosed coronary hemodynamics by coupling computational fluid dynamics (CFD) with the lumped parameter model (LPM) of the cardiovascular system. In this work, we have implemented a simple computational method to compute the FFR. As this method uses only coronary arteries for the CFD model and includes only the LPM of the coronary vascular system, it provides simpler boundary conditions for the coronary geometry and is computationally more efficient than existing approaches. To test the efficacy of this method, we simulated a three-dimensional straight vessel using CFD coupled with the LPM. The computed results were compared with those of the LPM. To validate this method in terms of clinically realistic geometry, a patient-specific model of stenosed coronary arteries was constructed from CT images, and the computed FFR was compared with clinically measured results. We evaluated the effect of a model aorta on the computed FFR and compared this with a model without the aorta. Computationally, the model without the aorta was more efficient than that with the aorta, reducing the CPU time required for computing a cardiac cycle to 43.4%.

Keywords
Coronary hemodynamics Fractional flow reserve Numerical simulation Patient-specific model
MeSH 主题词
Blood Flow Velocity Blood Pressure Computer Simulation Coronary Stenosis/diagnostic imaging,physiopathology Coronary Vessels/diagnostic imaging,physiopathology Humans Models, Cardiovascular Patient-Specific Modeling Radiography Reproducibility of Results Rheology/methods Sensitivity and Specificity Shear Strength Vascular Resistance
作者与单位
共 8 位作者,点击展开单位 / ORCID
Kwon Soon-Sung
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Chung Eui-Chul
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Park Jin-Seo
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Kim Gook-Tae
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Kim Jun-Woo
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Kim Keun-Hong
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea.
Shin Eun-Seok
Division of Cardiology, Department of Internal Medicine, Ulsan University Hospital, University of Ulsan College of Medicine, Ulsan, Republic of Korea.
Shim Eun Bo
Department of Mechanical and Biomedical Engineering, Kangwon National University, 192-1, Hyoja 2-dong, Chuncheon, Kangwon 200-701, Republic of Korea. Electronic address: [email protected].
Article Info
Journal
Progress in biophysics and molecular biology
Abbr.
Prog Biophys Mol Biol
ISSN
1873-1732
Corresponding email
Published
2014-09-00
电子出版
2014-00-23
页码
48-55
Language
English
Country/Region
England
NLM ID
0401233
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