Simulating Cardiac Fluid Dynamics in the Human Heart
Marshall Davey, Charles Puelz, Simone Rossi, Margaret Anne Smith,, David R. Wells, Greg Sturgeon, W. Paul Segars, John P. Vavalle, Charles S., Peskin, Boyce E. Griffith

TL;DR
This paper presents a comprehensive, physiologically detailed computational model of cardiac fluid dynamics that accurately simulates heart function, including valve performance and flow features, to aid medical research and interventions.
Contribution
It introduces the first detailed fluid-structure interaction model of the human heart incorporating all four valves and biomechanical tissue data, improving prediction accuracy.
Findings
Generates realistic pressure-volume loops
Predicts fine-scale flow features
Captures isovolumetric phases automatically
Abstract
Cardiac fluid dynamics fundamentally involves interactions between complex blood flows and the structural deformations of the muscular heart walls and the thin, flexible valve leaflets. There has been longstanding scientific, engineering, and medical interest in creating mathematical models of the heart that capture, explain, and predict these fluid-structure interactions. However, existing computational models that account for interactions among the blood, the actively contracting myocardium, and the cardiac valves are limited in their abilities to predict valve performance, resolve fine-scale flow features, or use realistic descriptions of tissue biomechanics. Here we introduce and benchmark a comprehensive mathematical model of cardiac fluid dynamics in the human heart. A unique feature of our model is that it incorporates biomechanically detailed descriptions of all major cardiac…
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Taxonomy
TopicsCardiovascular Function and Risk Factors · Cardiac Valve Diseases and Treatments · Cardiomyopathy and Myosin Studies
MethodsNone
