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Published in: Heart and Vessels 8/2017

Open Access 01-08-2017 | Original Article

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

Authors: Shohei Miyazaki, Keiichi Itatani, Toyoki Furusawa, Teruyasu Nishino, Masataka Sugiyama, Yasuo Takehara, Satoshi Yasukochi

Published in: Heart and Vessels | Issue 8/2017

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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.
Literature
1.
go back to reference Sughimoto K, Takahara Y, Mogi K, Yamazaki K, Tsubota K, Liang F, Liu H (2014) Blood flow dynamic improvement with aneurysm repair detected by a patient-specific model of multiple aortic aneurysms. Heart Vessels 29:404–412CrossRefPubMed Sughimoto K, Takahara Y, Mogi K, Yamazaki K, Tsubota K, Liang F, Liu H (2014) Blood flow dynamic improvement with aneurysm repair detected by a patient-specific model of multiple aortic aneurysms. Heart Vessels 29:404–412CrossRefPubMed
2.
go back to reference Koyama S, Kitamura T, Itatani K, Yamamoto T, Miyazaki S, Oka N, Nakashima K, Horai T, Ono M, Miyaji K (2016) Impact of top end anastomosis design on patency and flow stability in coronary artery bypass grafting. Heart Vessels 31:643–648CrossRefPubMed Koyama S, Kitamura T, Itatani K, Yamamoto T, Miyazaki S, Oka N, Nakashima K, Horai T, Ono M, Miyaji K (2016) Impact of top end anastomosis design on patency and flow stability in coronary artery bypass grafting. Heart Vessels 31:643–648CrossRefPubMed
3.
go back to reference Sughimoto K, Shimamura Y, Tezuka C, Tezuka C, Tsubota K, Liu H, Okumura K, Masuda Y, Haneishi H (2016) Effects of arterial blood flow on walls of the abdominal aorta: distributions of wall shear stress and oscillatory shear index determined by phase-contrast magnetic resonance imaging. Heart Vessels 31:1168–1175CrossRefPubMed Sughimoto K, Shimamura Y, Tezuka C, Tezuka C, Tsubota K, Liu H, Okumura K, Masuda Y, Haneishi H (2016) Effects of arterial blood flow on walls of the abdominal aorta: distributions of wall shear stress and oscillatory shear index determined by phase-contrast magnetic resonance imaging. Heart Vessels 31:1168–1175CrossRefPubMed
4.
go back to reference Qian Y, Liu JL, Itatani K, Miyaji K, Umezu M (2010) Computational hemodynamic analysis in congenital heart disease: simulation of the Norwood procedure. Ann Biomed Eng 38:2302–2313CrossRefPubMed Qian Y, Liu JL, Itatani K, Miyaji K, Umezu M (2010) Computational hemodynamic analysis in congenital heart disease: simulation of the Norwood procedure. Ann Biomed Eng 38:2302–2313CrossRefPubMed
5.
go back to reference Itatani K, Miyaji K, Tomoyasu T, Nakahata Y, Ohara K, Takamoto S, Ishii M (2009) Optimal conduit size of the extracardiac Fontan operation based on energy loss and flow stagnation. Ann Thorac Surg 88:565–573CrossRefPubMed Itatani K, Miyaji K, Tomoyasu T, Nakahata Y, Ohara K, Takamoto S, Ishii M (2009) Optimal conduit size of the extracardiac Fontan operation based on energy loss and flow stagnation. Ann Thorac Surg 88:565–573CrossRefPubMed
6.
go back to reference Itatani K, Miyaji K, Qian Y, Liu JL, Miyakoshi T, Murakami A, Ono M, Umezu M (2012) Influences of surgical arch reconstruction methods on single ventricle workload in the Norwood procedure. J Thorac Cardiovasc Surg 144:130–138CrossRefPubMed Itatani K, Miyaji K, Qian Y, Liu JL, Miyakoshi T, Murakami A, Ono M, Umezu M (2012) Influences of surgical arch reconstruction methods on single ventricle workload in the Norwood procedure. J Thorac Cardiovasc Surg 144:130–138CrossRefPubMed
7.
go back to reference Jahangiri M, Saghafian M, Sadeghi MR (2015) Numerical study of turbulent pulsatile blood flow through stenosed artery using fluid–solid interaction. Comput Math Methods Med 2015:515613CrossRefPubMedPubMedCentral Jahangiri M, Saghafian M, Sadeghi MR (2015) Numerical study of turbulent pulsatile blood flow through stenosed artery using fluid–solid interaction. Comput Math Methods Med 2015:515613CrossRefPubMedPubMedCentral
8.
go back to reference Kousera CA, Wood NB, Seed WA, Torii R, O’Regan D, Xu XY (2013) A numerical study of aortic flow stability and comparison with in vivo flow measurements. J Biomech Eng 135:011003CrossRefPubMed Kousera CA, Wood NB, Seed WA, Torii R, O’Regan D, Xu XY (2013) A numerical study of aortic flow stability and comparison with in vivo flow measurements. J Biomech Eng 135:011003CrossRefPubMed
9.
go back to reference Casas B, Lantz J, Dyverfeldt P, Ebbers T (2016) 4D Flow MRI-based pressure loss estimation in stenotic flows: evaluation using numerical simulations. Magn Reson Med 75:1808–1821CrossRefPubMed Casas B, Lantz J, Dyverfeldt P, Ebbers T (2016) 4D Flow MRI-based pressure loss estimation in stenotic flows: evaluation using numerical simulations. Magn Reson Med 75:1808–1821CrossRefPubMed
10.
go back to reference Itatani K, Okada T, Uejima T, Tanaka T, Ono M, Miyaji K, Takenaka K (2013) Intraventricular flow velocity vector visualization based on the continuity equation and measurements of vorticity and wall shear stress. Jpn J Appl Phys 52:16CrossRef Itatani K, Okada T, Uejima T, Tanaka T, Ono M, Miyaji K, Takenaka K (2013) Intraventricular flow velocity vector visualization based on the continuity equation and measurements of vorticity and wall shear stress. Jpn J Appl Phys 52:16CrossRef
11.
go back to reference Liu J, Qian Y, Sun Q, Liu J, Umezu M (2013) Use of computational fluid dynamics to estimate hemodynamic effects of respiration on hypoplastic left heart syndrome surgery: total cavopulmonary connection treatments. Sci World J 2013:131597 Liu J, Qian Y, Sun Q, Liu J, Umezu M (2013) Use of computational fluid dynamics to estimate hemodynamic effects of respiration on hypoplastic left heart syndrome surgery: total cavopulmonary connection treatments. Sci World J 2013:131597
12.
go back to reference Zhang H, Li JK-J (2009) A novel wave reflection model of the human arterial system. Cardiovasc Eng 9:39–48CrossRefPubMed Zhang H, Li JK-J (2009) A novel wave reflection model of the human arterial system. Cardiovasc Eng 9:39–48CrossRefPubMed
13.
go back to reference Van Doormaal MA, Kazakidi A, Wylezinska M, Hunt A, Tremoleda JL, Protti A, Bohraus Y, Gsell W, Weinberg PD, Ethier CR (2012) Haemodynamics in the mouse aortic arch computed from MRI-derived velocities at the aortic root. J R Soc Interface 9:2834–2844CrossRefPubMedPubMedCentral Van Doormaal MA, Kazakidi A, Wylezinska M, Hunt A, Tremoleda JL, Protti A, Bohraus Y, Gsell W, Weinberg PD, Ethier CR (2012) Haemodynamics in the mouse aortic arch computed from MRI-derived velocities at the aortic root. J R Soc Interface 9:2834–2844CrossRefPubMedPubMedCentral
14.
go back to reference Kilner PJ, Yang GZ, Mohiaddin RH, Firmin DN, Longmore DB (1993) Helical and retrograde secondary flow patterns in the aortic arch studied by three-directional magnetic resonance velocity mapping. Circulation 88:2235–2247CrossRefPubMed Kilner PJ, Yang GZ, Mohiaddin RH, Firmin DN, Longmore DB (1993) Helical and retrograde secondary flow patterns in the aortic arch studied by three-directional magnetic resonance velocity mapping. Circulation 88:2235–2247CrossRefPubMed
15.
go back to reference Frydrychowicz A, Berger A, Munoz Del Rio A, Russe MF, Bock J, Harloff A, Markl M (2012) Interdependencies of aortic arch secondary flow patterns, geometry, and age analysed by 4-dimensional phase contrast magnetic resonance imaging at 3 Tesla. Eur Radiol 22:1122–1130CrossRefPubMed Frydrychowicz A, Berger A, Munoz Del Rio A, Russe MF, Bock J, Harloff A, Markl M (2012) Interdependencies of aortic arch secondary flow patterns, geometry, and age analysed by 4-dimensional phase contrast magnetic resonance imaging at 3 Tesla. Eur Radiol 22:1122–1130CrossRefPubMed
16.
go back to reference Goubergrits L, Mevert R, Yevtushenko P, Schaller J, Kertzscher U, Meier S, Schubert S, Riesenkampff E, Kuehne T (2013) The impact of MRI-based inflow for the hemodynamic evaluation of aortic coarctation. Ann Biomed Eng 41:2575–2587CrossRefPubMed Goubergrits L, Mevert R, Yevtushenko P, Schaller J, Kertzscher U, Meier S, Schubert S, Riesenkampff E, Kuehne T (2013) The impact of MRI-based inflow for the hemodynamic evaluation of aortic coarctation. Ann Biomed Eng 41:2575–2587CrossRefPubMed
17.
go back to reference Frydrychowicz A, Winterer JT, Zaitsev M, Jung B, Henning J, Langer M, Markl M (2007) Visualization of iliac and proximal femoral artery hemodynamics using time-resolved 3D phase contrast MRI at 3T. J Magn Reson Imaging 25:1085–1092CrossRefPubMed Frydrychowicz A, Winterer JT, Zaitsev M, Jung B, Henning J, Langer M, Markl M (2007) Visualization of iliac and proximal femoral artery hemodynamics using time-resolved 3D phase contrast MRI at 3T. J Magn Reson Imaging 25:1085–1092CrossRefPubMed
18.
go back to reference Antiga L, Steinman DA (2009) Rethinking turbulence in blood. Biorheology 46:77–81PubMed Antiga L, Steinman DA (2009) Rethinking turbulence in blood. Biorheology 46:77–81PubMed
19.
20.
go back to reference Ansys, Inc. (2011) Fluent 14.0 Theory Guide. Ansys Inc., pp 51–54 Ansys, Inc. (2011) Fluent 14.0 Theory Guide. Ansys Inc., pp 51–54
21.
go back to reference Naito T, Miyachi S, Matsubara N, Isoda H, Izumi T, Haraguchi K, Takahashi I, Ishii K, Wakabayashi T (2012) Magnetic resonance fluid dynamics for intracranial aneurysms–comparison with computed fluid dynamics. Acta Neurochir (Wien) 154:993–1001CrossRef Naito T, Miyachi S, Matsubara N, Isoda H, Izumi T, Haraguchi K, Takahashi I, Ishii K, Wakabayashi T (2012) Magnetic resonance fluid dynamics for intracranial aneurysms–comparison with computed fluid dynamics. Acta Neurochir (Wien) 154:993–1001CrossRef
22.
go back to reference Xia G, Tawhai MH, Hoffman EA, Lin C-L (2010) Airway wall stiffening increases peak wall shear stress: a fluid-structure interaction study in rigid and compliant airways. Ann Biomed Eng 38:1836–1853CrossRefPubMedPubMedCentral Xia G, Tawhai MH, Hoffman EA, Lin C-L (2010) Airway wall stiffening increases peak wall shear stress: a fluid-structure interaction study in rigid and compliant airways. Ann Biomed Eng 38:1836–1853CrossRefPubMedPubMedCentral
23.
go back to reference Lantz J, Renner J, Karlsson M (2011) Wall shear stress in a subject specific human aorta—influence of fluid–structure interaction. Int J Appl Mech 03:759–778CrossRef Lantz J, Renner J, Karlsson M (2011) Wall shear stress in a subject specific human aorta—influence of fluid–structure interaction. Int J Appl Mech 03:759–778CrossRef
24.
go back to reference van Ooij P, Potters WV, Guédon A, Schneiders JJ, Marquering HA, Majoie CB, vanBavel E, Nederveen AJ (2013) Wall shear stress estimated with phase contrast MRI in an in vitro and in vivo intracranial aneurysm. J Magn Reson Imaging 38:876–884CrossRefPubMed van Ooij P, Potters WV, Guédon A, Schneiders JJ, Marquering HA, Majoie CB, vanBavel E, Nederveen AJ (2013) Wall shear stress estimated with phase contrast MRI in an in vitro and in vivo intracranial aneurysm. J Magn Reson Imaging 38:876–884CrossRefPubMed
Metadata
Title
Validation of numerical simulation methods in aortic arch using 4D Flow MRI
Authors
Shohei Miyazaki
Keiichi Itatani
Toyoki Furusawa
Teruyasu Nishino
Masataka Sugiyama
Yasuo Takehara
Satoshi Yasukochi
Publication date
01-08-2017
Publisher
Springer Japan
Published in
Heart and Vessels / Issue 8/2017
Print ISSN: 0910-8327
Electronic ISSN: 1615-2573
DOI
https://doi.org/10.1007/s00380-017-0979-2

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