Validation of a 3D computational fluid-structure interaction model simulating flow through an elastic aperture

被引:19
|
作者
Quaini, A. [1 ]
Canic, S. [1 ]
Glowinski, R. [1 ]
Igo, S. [2 ]
Hartley, C. J. [3 ]
Zoghbi, W. [2 ]
Little, S. [2 ]
机构
[1] Univ Houston, Dept Math, Houston, TX 77204 USA
[2] Methodist DeBakey Heart & Vasc Ctr, Dept Cardiol, Houston, TX USA
[3] Baylor Coll Med, Dept Med, Houston, TX 77030 USA
基金
美国国家科学基金会;
关键词
Fluid-structure interaction; Mitral valve regurgitation; Echocardiography; Computational fluid dynamics; Circulatory flow loop; FICTITIOUS DOMAIN METHOD; MECHANICAL HEART-VALVE; SPACE-TIME PROCEDURE; BLOOD-FLOW; MOVING BOUNDARIES; AORTIC-VALVE; INTERFACES; ARTERIES; REGURGITATION; FORMULATION;
D O I
10.1016/j.jbiomech.2011.10.020
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
This work presents a validation of a fluid-structure interaction computational model simulating the flow conditions in an in vitro mock heart chamber modeling mitral valve regurgitation during the ejection phase during which the trans-valvular pressure drop and valve displacement are not as large. The mock heart chamber was developed to study the use of 2D and 3D color Doppler techniques in imaging the clinically relevant complex intra-cardiac flow events associated with mitral regurgitation. Computational models are expected to play an important role in supporting, refining, and reinforcing the emerging 3D echocardiographic applications. We have developed a 3D computational fluid-structure interaction algorithm based on a semi-implicit, monolithic method, combined with an arbitrary Lagrangian-Eulerian approach to capture the fluid domain motion. The mock regurgitant mitral valve corresponding to an elastic plate with a geometric orifice, was modeled using 3D elasticity, while the blood flow was modeled using the 3D Navier-Stokes equations for an incompressible, viscous fluid. The two are coupled via the kinematic and dynamic conditions describing the two-way coupling. The pressure, the flow rate, and orifice plate displacement were measured and compared with numerical simulation results. In-line flow meter was used to measure the flow, pressure transducers were used to measure the pressure, and a Doppler method developed by one of the authors was used to measure the axial displacement of the orifice plate. The maximum recorded difference between experiment and numerical simulation for the flow rate was 4%, the pressure 3.6%, and for the orifice displacement 15%, showing excellent agreement between the two. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:310 / 318
页数:9
相关论文
共 50 条
  • [1] A 3D non-Newtonian fluid-structure interaction model for blood flow in arteries
    Janela, Joao
    Moura, Alexandra
    Sequeira, Adelia
    JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2010, 234 (09) : 2783 - 2791
  • [2] NUMERICAL SIMULATIONS OF A 3D FLUID-STRUCTURE INTERACTION MODEL FOR BLOOD FLOW IN AN ATHEROSCLEROTIC ARTERY
    Kafi, Oualid
    El Khatib, Nader
    Tiago, Jorge
    Sequeira, Adelia
    MATHEMATICAL BIOSCIENCES AND ENGINEERING, 2017, 14 (01) : 179 - 193
  • [3] A FLUID-STRUCTURE INTERACTION MODEL FOR 3D HEART VALVE DYNAMICS
    Vigmostad, Sarah C.
    Udaykumar, H. S.
    Lu, Jia
    Sacks, Michael S.
    Chandran, K. B.
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE 2008, PTS A AND B, 2009, : 1101 - 1102
  • [4] Computational Fluid-Structure Interaction and Flow Simulation
    Bazilevs, Yuri
    Takizawa, Kenji
    COMPUTERS & FLUIDS, 2016, 141 : 1 - 1
  • [5] Experimental investigation into the effects of fluid-structure interaction on the sloshing waves in 3D elastic tanks
    Li, Chenguang
    Jiang, Meirong
    Ren, Bing
    Wang, Yongxue
    PROCEEDINGS OF THE 36TH IAHR WORLD CONGRESS: DELTAS OF THE FUTURE AND WHAT HAPPENS UPSTREAM, 2015, : 4177 - 4185
  • [6] Simulating cyclic artery compression using a 3D unsteady model with fluid-structure interactions
    Tang, DL
    Yang, C
    Walker, H
    Kobayashi, S
    Ku, DN
    COMPUTERS & STRUCTURES, 2002, 80 (20-21) : 1651 - 1665
  • [7] A hybrid immersed boundary and material point method for simulating 3D fluid-structure interaction problems
    Gilmanov, Anvar
    Acharya, Sumanta
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2008, 56 (12) : 2151 - 2177
  • [8] An efficient parallel/unstructured-multigrid implicit method for simulating 3D Fluid-Structure Interaction
    Lv, X.
    Zhao, Y.
    Huang, X. Y.
    Xia, G. H.
    Su, X. H.
    COMMUNICATIONS IN COMPUTATIONAL PHYSICS, 2008, 4 (02) : 350 - 377
  • [9] A numerical 3D fluid-structure interaction model for blood flow in a MRI-based atherosclerotic artery
    El Khatib, Nader
    Kafi, Oualid
    Oliveira, Diana
    Sequeira, Adelia
    Tiago, Jorge
    MATHEMATICAL MODELLING OF NATURAL PHENOMENA, 2023, 18
  • [10] 3D Computational Fluid-Structure Interaction Model of Canine Heart with Different Patch Materials for Optimal Myocardium Regeneration
    Zuo, Heng
    Yang, Chun
    Gaudette, Glenn
    Billiar, Kristen L.
    Geva, Tal
    Kural, Mehmet H.
    del Nido, Pedro J.
    Tang, Dalin
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE - 2013, PT A, 2014,