Literature DB >> 25364850

Orthotropic active strain models for the numerical simulation of cardiac biomechanics.

Simone Rossi1, Ricardo Ruiz-Baier, Luca F Pavarino, Alfio Quarteroni.   

Abstract

A model for the active deformation of cardiac tissue considering orthotropic constitutive laws is introduced and studied. In particular, the passive mechanical properties of the myocardium are described by the Holzapfel-Ogden relation, whereas the activation model is based on the concept of active strain. There, an incompatible intermediate configuration is considered, which entails a multiplicative decomposition between active and passive deformation gradients. The underlying Euler-Lagrange equations for minimizing the total energy are written in terms of these deformation factors, where the active part is assumed to depend, at the cell level, on the electrodynamics and on the specific orientation of the cardiomyocytes. The active strain formulation is compared with the classical active stress model from both numerical and modeling perspectives. The well-posedness of the linear system derived from a generic Newton iteration of the original problem is analyzed, and different mechanical activation functions are considered. Taylor-Hood and MINI finite elements are used in the discretization of the overall mechanical problem. The results of several numerical experiments show that the proposed formulation is mathematically consistent and is able to represent the main features of the phenomenon, while allowing savings in computational costs.
Copyright © 2012 John Wiley & Sons, Ltd.

Keywords:  active strain formulation; cardiac mechanics; finite element discretization; nonlinear incompressible elasticity

Mesh:

Year:  2012        PMID: 25364850     DOI: 10.1002/cnm.2473

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


  14 in total

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4.  Modeling Active Contraction and Relaxation of Left Ventricle Using Different Zero-load Diastole and Systole Geometries for Better Material Parameter Estimation and Stress/Strain Calculations.

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Journal:  Mol Cell Biomech       Date:  2016

5.  Heterogeneous growth-induced prestrain in the heart.

Authors:  M Genet; M K Rausch; L C Lee; S Choy; X Zhao; G S Kassab; S Kozerke; J M Guccione; E Kuhl
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6.  The Generalized Hill Model: A Kinematic Approach Towards Active Muscle Contraction.

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7.  Shear wave speeds in nearly-incompressible fibrous materials with two fiber families.

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8.  A displacement-based finite element formulation for incompressible and nearly-incompressible cardiac mechanics.

Authors:  Myrianthi Hadjicharalambous; Jack Lee; Nicolas P Smith; David A Nordsletten
Journal:  Comput Methods Appl Mech Eng       Date:  2014-06-01       Impact factor: 6.756

Review 9.  Multiphysics and multiscale modelling, data-model fusion and integration of organ physiology in the clinic: ventricular cardiac mechanics.

Authors:  Radomir Chabiniok; Vicky Y Wang; Myrianthi Hadjicharalambous; Liya Asner; Jack Lee; Maxime Sermesant; Ellen Kuhl; Alistair A Young; Philippe Moireau; Martyn P Nash; Dominique Chapelle; David A Nordsletten
Journal:  Interface Focus       Date:  2016-04-06       Impact factor: 3.906

Review 10.  Personalised computational cardiology: Patient-specific modelling in cardiac mechanics and biomaterial injection therapies for myocardial infarction.

Authors:  Kevin L Sack; Neil H Davies; Julius M Guccione; Thomas Franz
Journal:  Heart Fail Rev       Date:  2016-11       Impact factor: 4.214

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