This manuscript is concerned with a novel, unified finite element approach to fully coupled cardiac electromechanics. The intrinsic coupling arises from both the excitation-induced contraction of cardiac cells and the deformation-induced generation of current due to the opening of ion channels. In contrast to the existing numerical approaches suggested in the literature, which devise staggered algorithms through distinct numerical methods for the respective electrical and mechanical problems, we propose a fully implicit, entirely finite element-based modular approach. To this end, the governing differential equations that are coupled through constitutive equations are recast into the corresponding weak forms through the conventional isopara...
Computational modeling of the human heart allows us to predict how chemical, electrical, and mechani...
We propose a finite element approximation of a system of partial differential equations describing t...
In this paper, a highly parallel coupled electromechanical model of the heart is presented and asses...
Abstract This manuscript is concerned with a novel, unified finite element approach to fully coupled...
We propose a novel, monolithic, and unconditionally stable finite element algorithm for the bidomain...
We propose a novel, unconditionally stable and fully coupled finite element method for the bidomain ...
Computational models have huge potential to improve our understanding of the coupled biological, ele...
Computational modeling of the cardiovascular system has improved remarkably with the advances in the...
We propose a novel, efficient finite element solution technique to simulate the electrochemical resp...
This paper is concerned with the mathematical analysis of a coupled elliptic-parabolic system modeli...
International audienceThis paper is concerned with the mathematical analysis of a coupled elliptic-p...
In this project, we develop a Finite Element Method (FEM) formulation that solves the cardiac electr...
This contribution addresses the mathematical modeling and numerical approximation of the excitation-...
We present an overview of the developments in the modeling of cardiac fluid/tissue mechanics and ele...
Computational modeling of the human heart allows us to predict how chemical, electrical, and mechani...
We propose a finite element approximation of a system of partial differential equations describing t...
In this paper, a highly parallel coupled electromechanical model of the heart is presented and asses...
Abstract This manuscript is concerned with a novel, unified finite element approach to fully coupled...
We propose a novel, monolithic, and unconditionally stable finite element algorithm for the bidomain...
We propose a novel, unconditionally stable and fully coupled finite element method for the bidomain ...
Computational models have huge potential to improve our understanding of the coupled biological, ele...
Computational modeling of the cardiovascular system has improved remarkably with the advances in the...
We propose a novel, efficient finite element solution technique to simulate the electrochemical resp...
This paper is concerned with the mathematical analysis of a coupled elliptic-parabolic system modeli...
International audienceThis paper is concerned with the mathematical analysis of a coupled elliptic-p...
In this project, we develop a Finite Element Method (FEM) formulation that solves the cardiac electr...
This contribution addresses the mathematical modeling and numerical approximation of the excitation-...
We present an overview of the developments in the modeling of cardiac fluid/tissue mechanics and ele...
Computational modeling of the human heart allows us to predict how chemical, electrical, and mechani...
We propose a finite element approximation of a system of partial differential equations describing t...
In this paper, a highly parallel coupled electromechanical model of the heart is presented and asses...