Literature DB >> 22841650

Effect of flow pulsatility on modeling the hemodynamics in the total cavopulmonary connection.

Reza H Khiabani1, Maria Restrepo, Elaine Tang, Diane De Zélicourt, Fotis Sotiropoulos, Mark Fogel, Ajit P Yoganathan.   

Abstract

Total cavopulmonary connection is the result of a series of palliative surgical repairs performed on patients with single ventricle heart defects. The resulting anatomy has complex and unsteady hemodynamics characterized by flow mixing and flow separation. Although varying degrees of flow pulsatility have been observed in vivo, non-pulsatile (time-averaged) boundary conditions have traditionally been assumed in hemodynamic modeling, and only recently have pulsatile conditions been incorporated without completely characterizing their effect or importance. In this study, 3D numerical simulations with both pulsatile and non-pulsatile boundary conditions were performed for 24 patients with different anatomies and flow boundary conditions from Georgia Tech database. Flow structures, energy dissipation rates and pressure drops were compared under rest and simulated exercise conditions. It was found that flow pulsatility is the primary factor in determining the appropriate choice of boundary conditions, whereas the anatomic configuration and cardiac output had secondary effects. Results show that the hemodynamics can be strongly influenced by the presence of pulsatile flow. However, there was a minimum pulsatility threshold, identified by defining a weighted pulsatility index (wPI), above which the influence was significant. It was shown that when wPI<30%, the relative error in hemodynamic predictions using time-averaged boundary conditions was less than 10% compared to pulsatile simulations. In addition, when wPI<50, the relative error was less than 20%. A correlation was introduced to relate wPI to the relative error in predicting the flow metrics with non-pulsatile flow conditions.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22841650      PMCID: PMC3444160          DOI: 10.1016/j.jbiomech.2012.07.010

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  16 in total

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4.  Effects of exercise and respiration on hemodynamic efficiency in CFD simulations of the total cavopulmonary connection.

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3.  Can time-averaged flow boundary conditions be used to meet the clinical timeline for Fontan surgical planning?

Authors:  Zhenglun Alan Wei; Phillip M Trusty; Mike Tree; Christopher M Haggerty; Elaine Tang; Mark Fogel; Ajit P Yoganathan
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Authors:  Elaine Tang; Zhenglun Alan Wei; Phillip M Trusty; Kevin K Whitehead; Lucia Mirabella; Alessandro Veneziani; Mark A Fogel; Ajit P Yoganathan
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5.  Respiratory Effects on Fontan Circulation During Rest and Exercise Using Real-Time Cardiac Magnetic Resonance Imaging.

Authors:  Zhenglun Wei; Kevin K Whitehead; Reza H Khiabani; Michael Tree; Elaine Tang; Stephen M Paridon; Mark A Fogel; Ajit P Yoganathan
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6.  Computational Fluid Dynamics Support for Fontan Planning in Minutes, Not Hours: The Next Step in Clinical Pre-Interventional Simulations.

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7.  Numerical and experimental investigation of pulsatile hemodynamics in the total cavopulmonary connection.

Authors:  Elaine Tang; Christopher M Haggerty; Reza H Khiabani; Diane de Zélicourt; Jessica Kanter; Fotis Sotiropoulos; Mark A Fogel; Ajit P Yoganathan
Journal:  J Biomech       Date:  2012-11-30       Impact factor: 2.712

8.  Using a Novel In Vitro Fontan Model and Condition-Specific Real-Time MRI Data to Examine Hemodynamic Effects of Respiration and Exercise.

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Journal:  Ann Biomed Eng       Date:  2017-10-24       Impact factor: 3.934

9.  Engineering Perspective on Cardiovascular Simulations of Fontan Hemodynamics: Where Do We Stand with a Look Towards Clinical Application.

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