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PMID: 28444501 Published · ppublish English Journal Article Validation Study

Validation of numerical simulation methods in aortic arch using 4D Flow MRI.

Heart and vessels ·Vol. 32 ·No. 8 ·2017-08-00 ·页码 1032-1044

Miyazaki S, Itatani K, Furusawa T, Nishino T, Sugiyama M, Takehara Y, Yasukochi S

Abstract

Computational fluid dynamics (CFD) are the gold standard in studying blood flow dynamics. However, CFD results are dependent on the boundary conditions and the computation model. The purpose of this study was to validate CFD methods using comparison with actual measurements of the blood flow vector obtained with four-dimensional (4D) flow magnetic resonance imaging (MRI). 4D Flow MRI was performed on a healthy adult and a child with double-aortic arch. The aortic lumen was segmented to visualize the blood flow. The CFD analyses were performed for the same geometries based on three turbulent models: laminar, large eddy simulation (LES), and the renormalization group k-ε model (RNG k-ε). The flow-velocity vector components, namely the wall shear stress (WSS) and flow energy loss (EL), of the MRI and CFD results were compared. The flow rate of the MRI results was underestimated in small vessels, including the neck vessels. Spiral flow in the ascending aorta caused by the left ventricular twist was observed by MRI. Secondary flow distal to the aortic arch was well realized in both CFD and MRI. The average correlation coefficients of the velocity vector components of MRI and CFD for the child were the highest for the RNG k-ε model (0.530 in ascending aorta, 0.768 in the aortic arch, 0.584 in the descending aorta). The WSS and EL values of MRI were less than half of those of CFD, but the WSS distribution patterns were quite similar. The WSS and EL estimates were higher in RNG k-ε and LES than in the laminar model because of eddy viscosity. The CFD computation realized accurate flow distal to the aortic arch, and the WSS distribution was well simulated compared to actual measurement using 4D Flow MRI. However, the helical flow was not simulated in the ascending aorta. The accuracy was enhanced by using the turbulence model, and the RNG k-ε model showed the highest correlation with 4D Flow MRI.

Keywords
Computational fluid dynamics Flow energy loss Phase-contrast MRI Wall shear stress
MeSH 主题词
Aorta, Thoracic/diagnostic imaging,physiology Blood Flow Velocity/physiology Computer Simulation Female Healthy Volunteers Humans Image Processing, Computer-Assisted/methods Magnetic Resonance Imaging/methods Middle Aged Models, Cardiovascular Stress, Mechanical
作者与单位
共 7 位作者,点击展开单位 / ORCID
Miyazaki Shohei
Cardio Flow Design, Inc., Chiyoda, Tokyo, Japan. | Department of Cardiovascular Surgery, Kyoto Prefectural University of Medicine, 1-5 Hangi-cho, Shimogamo, Sakyo-ku, Kyoto, 606-8522, Japan.
Itatani Keiichi
Cardio Flow Design, Inc., Chiyoda, Tokyo, Japan. [email protected]. | Department of Cardiovascular Surgery, Kyoto Prefectural University of Medicine, 1-5 Hangi-cho, Shimogamo, Sakyo-ku, Kyoto, 606-8522, Japan. [email protected].
Furusawa Toyoki
NEC Solution Innovators, Ltd., Koutou, Tokyo, Japan.
Nishino Teruyasu
Cardio Flow Design, Inc., Chiyoda, Tokyo, Japan.
Sugiyama Masataka
Department of Radiology, Hamamatsu University School of Medicine, Hamamatsu, Shizuoka, Japan.
Takehara Yasuo
Department of Radiology, Hamamatsu University School of Medicine, Hamamatsu, Shizuoka, Japan.
Yasukochi Satoshi
Department of Pediatric Cardiology, Nagano Children's Hospital, Azumino, Nagano, Japan.
Article Info
Journal
Heart and vessels
Abbr.
Heart Vessels
ISSN
1615-2573
Corresponding email
Published
2017-08-00
电子出版
2017-00-25
页码
1032-1044
Language
English
Country/Region
Japan
NLM ID
8511258
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