Immersed boundary-finite element model of fluid-structure interaction in the aortic root

被引:26
|
作者
Flamini, Vittoria [1 ]
DeAnda, Abe [2 ]
Griffith, Boyce E. [3 ,4 ,5 ]
机构
[1] NYU, Dept Mech & Aerosp Engn, Tandon Sch Engn, Brooklyn, NY USA
[2] Univ Texas Med Branch, Dept Surg, Div Cardiothorac Surg, Galveston, TX 77555 USA
[3] Univ N Carolina, Dept Math, Phillips Hall,Campus Box 3250, Chapel Hill, NC USA
[4] Univ N Carolina, Dept Biomed Engn, Phillips Hall,Campus Box 3250, Chapel Hill, NC USA
[5] Univ N Carolina, McAllister Heart Inst, Phillips Hall,Campus Box 3250, Chapel Hill, NC USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
Aortic valve; Fluid-structure interaction; Immersed boundary method; Incompressible flow; Hyperelasticity; Finite element method; Finite difference method; STRUCTURE INTERACTION SIMULATION; RESIDUAL-STRESSES; VALVE DISEASE; HEART-VALVES; BLOOD-FLOW; DYNAMICS; ACCURATE;
D O I
10.1007/s00162-015-0374-5
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
It has long been recognized that aortic root elasticity helps to ensure efficient aortic valve closure, but our understanding of the functional importance of the elasticity and geometry of the aortic root continues to evolve as increasingly detailed in vivo imaging data become available. Herein, we describe a fluid-structure interaction model of the aortic root, including the aortic valve leaflets, the sinuses of Valsalva, the aortic annulus, and the sinotubular junction, that employs a version of Peskin's immersed boundary (IB) method with a finite element description of the structural elasticity. As in earlier work, we use a fiber-based model of the valve leaflets, but this study extends earlier IB models of the aortic root by employing an incompressible hyperelastic model of the mechanics of the sinuses and ascending aorta using a constitutive law fit to experimental data from human aortic root tissue. In vivo pressure loading is accounted for by a backward displacement method that determines the unloaded configuration of the root model. Our model yields realistic cardiac output at physiological pressures, with low transvalvular pressure differences during forward flow, minimal regurgitation during valve closure, and realistic pressure loads when the valve is closed during diastole. Further, results from high-resolution computations indicate that although the detailed leaflet and root kinematics show some grid sensitivity, our IB model of the aortic root nonetheless produces essentially grid-converged flow rates and pressures at practical grid spacings for the high Reynolds number flows of the aortic root. These results thereby clarify minimum grid resolutions required by such models when used as stand-alone models of the aortic valve as well as when used to provide models of the outflow valves in models of left-ventricular fluid dynamics.
引用
收藏
页码:139 / 164
页数:26
相关论文
共 50 条
  • [31] A Lattice Boltzmann Based Immersed Boundary Method for Fluid-Structure Interaction
    Yang, J. F.
    Wang, Z. D.
    Wei, Y. K.
    Qian, Y. H.
    SIXTH INTERNATIONAL CONFERENCE ON NONLINEAR MECHANICS (ICNM-VI), 2013, : 261 - 264
  • [32] A finite element modelling for active fluid-structure interaction
    Tralli, Aldo
    Gaudenzi, Paolo
    SIXTEENTH INTERNATIONAL CONFERENCE ON ADAPTIVE STRUCTURES AND TECHNOLOGIES, 2006, : 199 - 206
  • [33] An immersed boundary method for fluid-structure interaction with compressible multiphase flows
    Wang, Li
    Currao, Gaetano M. D.
    Han, Feng
    Neely, Andrew J.
    Young, John
    Tian, Fang-Bao
    JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 346 : 131 - 151
  • [34] An immersed boundary method for fluid-structure interaction based on variational transfer
    Nestola, Maria Giuseppin Chiara
    Becsek, Barna
    Zolfaghari, Hadi
    Zulian, Patrick
    De Marinis, Dario
    Krause, Rolf
    Obrist, Dominik
    JOURNAL OF COMPUTATIONAL PHYSICS, 2019, 398
  • [35] An immersed finite element material point (IFEMP) method for free surface fluid-structure interaction problems
    Li, Ming-Jian
    Lian, Yanping
    Zhang, Xiong
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2022, 393
  • [36] STATE-SPACE BOUNDARY ELEMENT-FINITE ELEMENT COUPLING FOR FLUID-STRUCTURE INTERACTION ANALYSIS
    GIORDANO, JA
    KOOPMANN, GH
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1995, 98 (01): : 363 - 372
  • [37] Fluid-structure interaction problems, finite element and boundary element approaches - A bibliography (1995-1998)
    Mackerle, J
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 1999, 31 (03) : 231 - 240
  • [38] A finite-element/boundary-element method for large-displacement fluid-structure interaction
    van Opstal, T. M.
    van Brummelen, E. H.
    de Borst, R.
    Lewis, M. R.
    COMPUTATIONAL MECHANICS, 2012, 50 (06) : 779 - 788
  • [39] A finite-element/boundary-element method for large-displacement fluid-structure interaction
    T. M. van Opstal
    E. H. van Brummelen
    R. de Borst
    M. R. Lewis
    Computational Mechanics, 2012, 50 : 779 - 788
  • [40] An immersed boundary method for the fluid-structure interaction of slender flexible structures in viscous fluid
    Tschisgale, Silvio
    Froehlich, Jochen
    JOURNAL OF COMPUTATIONAL PHYSICS, 2020, 423