International audienceWe follow a formal homogenization approach to investigate the effects of mechanical deformations in electrophysiology models relying on a bidomain description of ionic motion at the microscopic level. To that purpose, we extend these microscopic equations to take into account the mechanical deformations, and proceed by recasting the problem in the framework of classical two-scale homogenization in periodic media, and identifying the equations satisfied by the first coefficients in the formal expansions. The homogenized equations reveal some interesting effects related to the microstructure - and associated with a specific cell problem to be solved to obtain the macroscopic conductivity tensors - in which mechanical def...
When modelling tissue-level cardiac electrophysiology, a continuum approximation to the discrete cel...
The aim of this work is to investigate, by means of numerical simulations, the influence of myocardi...
Abstract We derive the values for the intracellular and extracellular conductivities needed for bido...
International audienceWe follow a formal homogenization approach to investigate the effects of mecha...
Aims Electrophysiological simulations may help to investigate causes and possible treatments of vent...
We numerically investigate the role of mechanical stress in modifying the conductivity properties of...
Bidomain equations are the standard way to model the electric potential in cardiac tissue. We propos...
We introduce an electromechanical model for human cardiac tissue which couples a biophysical model o...
We study, by means of the periodic unfolding technique, the homogenization of a modified bidomain mo...
In the first part of this dissertation, we investigate three different issues involving homogenizati...
Introduction: The most used model in the elctrophysiology of the heart,known as the bidomain model, ...
The use of mathematical models combining wave propagation and wall mechanics may provide new insight...
International audienceIn the present paper, a new three-scale asymptotic homogenization method is pr...
When modelling tissue-level cardiac electrophysiology, a continuum approximation to the discrete cel...
The aim of this work is to investigate, by means of numerical simulations, the influence of myocardi...
Abstract We derive the values for the intracellular and extracellular conductivities needed for bido...
International audienceWe follow a formal homogenization approach to investigate the effects of mecha...
Aims Electrophysiological simulations may help to investigate causes and possible treatments of vent...
We numerically investigate the role of mechanical stress in modifying the conductivity properties of...
Bidomain equations are the standard way to model the electric potential in cardiac tissue. We propos...
We introduce an electromechanical model for human cardiac tissue which couples a biophysical model o...
We study, by means of the periodic unfolding technique, the homogenization of a modified bidomain mo...
In the first part of this dissertation, we investigate three different issues involving homogenizati...
Introduction: The most used model in the elctrophysiology of the heart,known as the bidomain model, ...
The use of mathematical models combining wave propagation and wall mechanics may provide new insight...
International audienceIn the present paper, a new three-scale asymptotic homogenization method is pr...
When modelling tissue-level cardiac electrophysiology, a continuum approximation to the discrete cel...
The aim of this work is to investigate, by means of numerical simulations, the influence of myocardi...
Abstract We derive the values for the intracellular and extracellular conductivities needed for bido...