Literature DB >> 25830205

An active strain electromechanical model for cardiac tissue.

F Nobile1, A Quarteroni, R Ruiz-Baier.   

Abstract

We propose a finite element approximation of a system of partial differential equations describing the coupling between the propagation of electrical potential and large deformations of the cardiac tissue. The underlying mathematical model is based on the active strain assumption, in which it is assumed that there is a multiplicative decomposition of the deformation tensor into a passive and active part holds, the latter carrying the information of the electrical potential propagation and anisotropy of the cardiac tissue into the equations of either incompressible or compressible nonlinear elasticity, governing the mechanical response of the biological material. In addition, by changing from a Eulerian to a Lagrangian configuration, the bidomain or monodomain equations modeling the evolution of the electrical propagation exhibit a nonlinear diffusion term. Piecewise quadratic finite elements are employed to approximate the displacements field, whereas for pressure, electrical potentials and ionic variables are approximated by piecewise linear elements. Various numerical tests performed with a parallel finite element code illustrate that the proposed model can capture some important features of the electromechanical coupling and show that our numerical scheme is efficient and accurate.

Mesh:

Year:  2012        PMID: 25830205     DOI: 10.1002/cnm.1468

Source DB:  PubMed          Journal:  Int J Numer Method Biomed Eng        ISSN: 2040-7939            Impact factor:   2.747


  12 in total

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4.  A Numerical Study of Scalable Cardiac Electro-Mechanical Solvers on HPC Architectures.

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8.  An electromechanical left ventricular wedge model to study the effects of deformation on repolarization during heart failure.

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Authors:  Ismail Adeniran; David H MacIver; Clifford J Garratt; Jianqiao Ye; Jules C Hancox; Henggui Zhang
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10.  Electro-mechanical dynamics of spiral waves in a discrete 2D model of human atrial tissue.

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Journal:  PLoS One       Date:  2017-05-16       Impact factor: 3.240

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