Assessment of turbulent blood flow and wall shear stress in aortic coarctation using image-based simulations

被引:19
|
作者
Perinajova, Romana [1 ,2 ]
Juffermans, Joe F. [3 ]
Mercado, Jonhatan Lorenzo [1 ]
Aben, Jean-Paul [4 ]
Ledoux, Leon [4 ]
Westenberg, Jos J. M. [3 ]
Lamb, Hildo J. [3 ]
Kenjeres, Sasa [1 ,2 ]
机构
[1] Delft Univ Technol, Fac Appl Sci, Dept Chem Engn, Delft, Netherlands
[2] JM Burgersctr Res Sch Fluid Mech, Delft, Netherlands
[3] Leiden Univ, Dept Radiol, Med Ctr, Leiden, Netherlands
[4] Pie Med Imaging BV, Maastricht, Netherlands
关键词
Magnetic resonance imaging; Computational fluid dynamics; Turbulence; Aorta; Coarctation; Phantom; COMPUTATIONAL FLUID-DYNAMICS; INTRACRANIAL ANEURYSMS; FLUCTUATIONS; IMPACT;
D O I
10.1186/s12938-021-00921-4
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In this study, we analyzed turbulent flows through a phantom (a 180 degrees bend with narrowing) at peak systole and a patient-specific coarctation of the aorta (CoA), with a pulsating flow, using magnetic resonance imaging (MRI) and computational fluid dynamics (CFD). For MRI, a 4D-flow MRI is performed using a 3T scanner. For CFD, the standard k - epsilon, shear stress transport k - omega, and Reynolds stress (RSM) models are applied. A good agreement between measured and simulated velocity is obtained for the phantom, especially for CFD with RSM. The wall shear stress (WSS) shows significant differences between CFD and MRI in absolute values, due to the limited near-wall resolution of MRI. However, normalized WSS shows qualitatively very similar distributions of the local values between MRI and CFD. Finally, a direct comparison between in vivo 4D-flow MRI and CFD with the RSM turbulence model is performed in the CoA. MRI can properly identify regions with locally elevated or suppressed WSS. If the exact values of the WSS are necessary, CFD is the preferred method. For future applications, we recommend the use of the combined MRI/CFD method for analysis and evaluation of the local flow patterns and WSS in the aorta.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Assessment of turbulent blood flow and wall shear stress in aortic coarctation using image-based simulations
    Romana Perinajová
    Joe F. Juffermans
    Jonhatan Lorenzo Mercado
    Jean-Paul Aben
    Leon Ledoux
    Jos J. M. Westenberg
    Hildo J. Lamb
    Saša Kenjereš
    BioMedical Engineering OnLine, 20
  • [2] INFLUENCE OF VESSEL ROUGHNESS ON WALL SHEAR STRESS IN IMAGE-BASED BLOOD FLOW MODELING
    Xiong, Guanglei
    Taylor, Charles A.
    2010 7TH IEEE INTERNATIONAL SYMPOSIUM ON BIOMEDICAL IMAGING: FROM NANO TO MACRO, 2010, : 33 - 36
  • [3] Wall shear stress and atherosclerosis: Numerical blood flow Simulations in the mouse aortic arch
    Ruengsakulrach, P.
    Joshi, A. K.
    Fremes, S.
    Butany, J.
    Foster, S.
    Wiwatanapataphee, B.
    Lenbury, Y.
    APPLIED MATHEMATICS FOR SCIENCE AND ENGINEERING, 2007, : 199 - +
  • [4] Abnormal blood flow and wall shear stress are present in corrected aortic coarctation despite successful surgical repair
    Farag, Emile S.
    van Ooij, Pim
    Boekholdt, S. Matthijs
    Planken, R. Nils
    Dukker, Kayleigh C.
    Bouma, Berto J.
    Groenink, Maarten
    Koolbergen, David R.
    Sojak, Vladimir
    Nederveen, Aart J.
    Hazekamp, Mark G.
    de Mol, Bas A.
    Kluin, Jolanda
    JOURNAL OF CARDIOVASCULAR SURGERY, 2019, 60 (01): : 152 - 154
  • [5] Pulsatile Blood Flow Simulations in Aortic Arch: Effects of Blood Pressure and the Geometry of Arch on Wall Shear Stress
    Vasava, P.
    Jalali, P.
    Dabagh, M.
    4TH EUROPEAN CONFERENCE OF THE INTERNATIONAL FEDERATION FOR MEDICAL AND BIOLOGICAL ENGINEERING, 2009, 22 (1-3): : 1926 - 1929
  • [6] Is aortic wall shear stress affected by aging? An image-based numerical study with two age groups
    Lantz, Jonas
    Renner, Johan
    Lanne, Toste
    Karlsson, Matts
    MEDICAL ENGINEERING & PHYSICS, 2015, 37 (03) : 265 - 271
  • [7] Hemodynamics and Wall Shear Stress of Blood Vessels in Aortic Coarctation with Computational Fluid Dynamics Simulation
    Kim, Gi-Beum
    Park, Kwang-Hyun
    Kim, Seong-Jong
    MOLECULES, 2022, 27 (04):
  • [8] WALL SHEAR STRESS IN TURBULENT PIPE FLOW
    Gardhagen, Roland
    Lantz, Jonas
    Carlsson, Fredrik
    Karlsson, Matts
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE - 2009, PT A AND B, 2009, : 963 - 964
  • [9] Image-based biomechanical modeling of aortic wall stress and vessel deformation: Response to pulsatile arterial pressure simulations
    Hazer, Dilana
    Bauer, Miriam
    Unterhinninghofen, Roland
    Dillmann, Ruediger
    Richter, Goetz-M.
    MEDICAL IMAGING 2008: PHYSIOLOGY, FUNCTION, AND STRUCTURE FROM MEDICAL IMAGES, 2008, 6916
  • [10] Image-Based Technique for Turbulent Flow Segmentation
    Osman, A. B.
    Ovinis, Mark
    Faye, I.
    Hashim, F. M.
    COMPUTATIONAL SCIENCE AND TECHNOLOGY, ICCST 2017, 2018, 488 : 119 - 129