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Synapse
March 3, 20260 citations

Modeling heart flow dynamics using numerical simulations to identify the vortex ring: a practical guide

ESEneko Lazpita SuinagaABAndrea Mares BouPIPedro Quintero Igeño

Key Points

  • Capturing the vortex ring's formation is critical for understanding ventricular flow dynamics, which directly affects heart performance.
  • Optimizing conditions like mesh configurations and boundary settings enhances simulation realism and efficiency, leading to better insights.

Structured PICO

P
Population
Human left ventricle models (idealized and patient-specific geometries)
I
Intervention
Computational fluid mechanics simulations with optimized mesh configurations, flow conditions, and boundary settings
O
Outcome
Accurate capture of the formation and behavior of the vortex ring

Optimizing mesh configurations, dynamic wall motion, and boundary conditions is crucial for accurately and efficiently simulating left ventricular vortex ring dynamics in computational models.

Abstract

In this study, we present a comprehensive numerical analysis of blood flow within human left ventricle models, with particular emphasis on optimizing simulation conditions to enhance the realism and computational efficiency of heart flow dynamics. The objective is to determine the most effective mesh configurations, flow conditions, and boundary settings necessary for accurately capturing the formation and behavior of the vortex ring—a pivotal element in ventricular flow dynamics. Utilizing a computational fluid mechanics approach, we review the influence of both idealized and patient-specific geometries on simulation outcomes. It is imperative to consider the necessity of dynamic wall motion and the precise calibration of inlet and outlet boundary conditions, which must be designed to mimic physiological conditions as accurately as possible. These factors are of paramount importance in achieving a balance between computational resource demands and the fidelity of the simulations, thereby providing valuable insights for future cardiovascular modeling efforts. Tutorials explaining details of the simulations and the codes used are included in ModelFLOWs-app website 14.

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Cite This Study

Suinaga et al. (2024) studied this question.

synapsesocial.com/papers/69a75fafc6e9836116a2b550
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Modeling heart flow dynamics using numerical simulations to identify the vortex ring: A practical guide2024 · 5 citations
  2. 2Characterizing intraventricular flow patterns via modal decomposition techniques in idealized left ventricle models2026
  3. 3Flow in a Simple Model Skeletal Muscle Ventricle: Comparison Between Numerical and Physical Simulations1997 · 10 citations
  4. 4Hemodynamics and Fluid-Structure-Interaction in a Virtual Heart2010
  5. 5Numerical Simulations of Blood Flow in Artificial and Natural Hearts With Fluid–Structure Interaction2008 · 12 citations