A geometric multiscale model for the numerical simulation of blood flow in the human left heart
arXiv:2110.02114 · doi:10.3934/dcdss.2022052
Abstract
We present a new computational model for the numerical simulation of blood flow in the human left heart. To this aim, we use the Navier-Stokes equations in an Arbitrary Lagrangian Eulerian formulation to account for the endocardium motion and we model the cardiac valves by means of the Resistive Immersed Implicit Surface method. To impose a physiological displacement of the domain boundary, we use a 3D cardiac electromechanical model of the left ventricle coupled to a lumped-parameter (0D) closed-loop model of the remaining circulation. We thus obtain a one-way coupled electromechanics-fluid dynamics model in the left ventricle. To extend the left ventricle motion to the endocardium of the left atrium and to that of the ascending aorta, we introduce a preprocessing procedure according to which an harmonic extension of the left ventricle displacement is combined with the motion of the left atrium based on the 0D model. To better match the 3D cardiac fluid flow with the external blood circulation, we couple the 3D Navier-Stokes equations to the 0D circulation model, obtaining a multiscale coupled 3D-0D fluid dynamics model that we solve via a segregated numerical scheme. We carry out numerical simulations for a healthy left heart and we validate our model by showing that meaningful hemodynamic indicators are correctly reproduced.
References in corpus (6)
- Modeling cardiac muscle fibers in ventricular and atrial electrophysiology simulations
- FSEI-GPU: GPU accelerated simulations of the fluid-structure-electrophysiology interaction in the left heart
- Impact of Atrial Fibrillation on Left Atrium Haemodynamics: A Computational Fluid Dynamics Study
- Hemodynamics of the heart's left atrium based on a Variational Multiscale-LES numerical method
- Towards a Computational Framework for Modeling the Impact of Aortic Coarctations upon Left Ventricular Load
- An open tool based on lifex for myofibers generation in cardiac computational models
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- A stable loosely-coupled scheme for cardiac electro-fluid-structure interaction
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- Influence of the flow split ratio on the position of the main atrial vortex: implications for stasis on the left atrial appendage