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一种整合心脏电生理学、力学和流体动力学的数学模型:应用于人体左心。

A mathematical model that integrates cardiac electrophysiology, mechanics, and fluid dynamics: Application to the human left heart.

作者信息

Bucelli Michele, Zingaro Alberto, Africa Pasquale Claudio, Fumagalli Ivan, Dede' Luca, Quarteroni Alfio

机构信息

MOX, Dipartimento di Matematica, Politecnico di Milano, Milan, Italy.

Institute of Mathematics, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

出版信息

Int J Numer Method Biomed Eng. 2023 Mar;39(3):e3678. doi: 10.1002/cnm.3678. Epub 2023 Jan 20.

Abstract

We propose a mathematical and numerical model for the simulation of the heart function that couples cardiac electrophysiology, active and passive mechanics and hemodynamics, and includes reduced models for cardiac valves and the circulatory system. Our model accounts for the major feedback effects among the different processes that characterize the heart function, including electro-mechanical and mechano-electrical feedback as well as force-strain and force-velocity relationships. Moreover, it provides a three-dimensional representation of both the cardiac muscle and the hemodynamics, coupled in a fluid-structure interaction (FSI) model. By leveraging the multiphysics nature of the problem, we discretize it in time with a segregated electrophysiology-force generation-FSI approach, allowing for efficiency and flexibility in the numerical solution. We employ a monolithic approach for the numerical discretization of the FSI problem. We use finite elements for the spatial discretization of partial differential equations. We carry out a numerical simulation on a realistic human left heart model, obtaining results that are qualitatively and quantitatively in agreement with physiological ranges and medical images.

摘要

我们提出了一个用于模拟心脏功能的数学和数值模型,该模型将心脏电生理学、主动和被动力学以及血液动力学相结合,并包含心脏瓣膜和循环系统的简化模型。我们的模型考虑了表征心脏功能的不同过程之间的主要反馈效应,包括机电反馈和机械电反馈以及力-应变和力-速度关系。此外,它提供了心肌和血液动力学的三维表示,并在流固耦合(FSI)模型中进行了耦合。通过利用该问题的多物理性质,我们采用一种分离的电生理学-力生成-FSI方法在时间上对其进行离散化,从而在数值求解中实现效率和灵活性。对于FSI问题的数值离散化,我们采用整体方法。我们使用有限元对偏微分方程进行空间离散化。我们在一个真实的人体左心模型上进行了数值模拟,获得的结果在定性和定量上均与生理范围和医学图像相符。

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