A Modular Framework for Implicit 3D-0D Coupling in Cardiac Mechanics
Aaron L. Brown, Matteo Salvador, Lei Shi, Martin R. Pfaller, Zinan Hu,, Kaitlin E. Harold, Tzung Hsiai, Vijay Vedula, and Alison L. Marsden

TL;DR
This paper introduces a modular, implicit coupling framework for integrating 3D cardiac mechanics simulations with 0D circulatory models, enabling physiologically accurate and computationally efficient cardiovascular modeling.
Contribution
It extends existing coupling schemes to combine 3D cardiac tissue mechanics with 0D blood circulation models within a unified, modular framework, improving flexibility and accuracy.
Findings
The coupled model reproduces realistic pressure-volume loops.
The scheme captures isovolumic phases without extra techniques.
The approach demonstrates good convergence and computational efficiency.
Abstract
In numerical simulations of cardiac mechanics, coupling the heart to a model of the circulatory system is essential for capturing physiological cardiac behavior. A popular and efficient technique is to use an electrical circuit analogy, known as a lumped parameter network or zero-dimensional (0D) fluid model, to represent blood flow throughout the cardiovascular system. Due to the strong physical interaction between the heart and the blood circulation, developing accurate and efficient numerical coupling methods remains an active area of research. In this work, we present a modular framework for implicitly coupling three-dimensional (3D) finite element simulations of cardiac mechanics to 0D models of blood circulation. The framework is modular in that the circulation model can be modified independently of the 3D finite element solver, and vice versa. The numerical scheme builds upon a…
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Taxonomy
TopicsCardiovascular Function and Risk Factors · Electron Spin Resonance Studies · Advanced MRI Techniques and Applications
