Literature DB >> 24533658

An orthotropic viscoelastic material model for passive myocardium: theory and algorithmic treatment.

F Barış Can Cansız1, Hüsnü Dal, Michael Kaliske.   

Abstract

This contribution presents a novel constitutive model in order to simulate an orthotropic rate-dependent behaviour of the passive myocardium at finite strains. The motivation for the consideration of orthotropic viscous effects in a constitutive level lies in the disagreement between theoretical predictions and experimentally observed results. In view of experimental observations, the material is deemed as nearly incompressible, hyperelastic, orthotropic and viscous. The viscoelastic response is formulated by means of a rheological model consisting of a spring coupled with a Maxwell element in parallel. In this context, the isochoric free energy function is decomposed into elastic equilibrium and viscous non-equilibrium parts. The baseline elastic response is modelled by the orthotropic model of Holzapfel and Ogden [Holzapfel GA, Ogden RW. 2009. Constitutive modelling of passive myocardium: a structurally based framework for material characterization. Philos Trans Roy Soc A Math Phys Eng Sci. 367:3445-3475]. The essential aspect of the proposed model is the account of distinct relaxation mechanisms for each orientation direction. To this end, the non-equilibrium response of the free energy function is constructed in the logarithmic strain space and additively decomposed into three anisotropic parts, denoting fibre, sheet and normal directions each accompanied by a distinct dissipation potential governing the evolution of viscous strains associated with each orientation direction. The evolution equations governing the viscous flow have an energy-activated nonlinear form. The energy storage in the Maxwell branches has a quadratic form leading to a linear stress-strain response in the logarithmic strain space. On the numerical side, the algorithmic aspects suitable for the implicit finite element method are discussed in a Lagrangian setting. The model shows excellent agreement compared to experimental data obtained from the literature. Furthermore, the finite element simulations of a heart cycle carried out with the proposed model show significant deviations in the strain field relative to the elastic solution.

Entities:  

Keywords:  cardiac mechanics; finite element method; myocardium; orthotropy; viscoelasticity

Year:  2014        PMID: 24533658     DOI: 10.1080/10255842.2014.881475

Source DB:  PubMed          Journal:  Comput Methods Biomech Biomed Engin        ISSN: 1025-5842            Impact factor:   1.763


  6 in total

1.  Bioengineering Human Myocardium on Native Extracellular Matrix.

Authors:  Jacques P Guyette; Jonathan M Charest; Robert W Mills; Bernhard J Jank; Philipp T Moser; Sarah E Gilpin; Joshua R Gershlak; Tatsuya Okamoto; Gabriel Gonzalez; David J Milan; Glenn R Gaudette; Harald C Ott
Journal:  Circ Res       Date:  2015-10-26       Impact factor: 17.367

Review 2.  A Contemporary Look at Biomechanical Models of Myocardium.

Authors:  Reza Avazmohammadi; João S Soares; David S Li; Samarth S Raut; Robert C Gorman; Michael S Sacks
Journal:  Annu Rev Biomed Eng       Date:  2019-06-04       Impact factor: 9.590

Review 3.  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 4.  Computational modeling of cardiac growth and remodeling in pressure overloaded hearts-Linking microstructure to organ phenotype.

Authors:  Justyna A Niestrawska; Christoph M Augustin; Gernot Plank
Journal:  Acta Biomater       Date:  2020-02-11       Impact factor: 8.947

Review 5.  Structural modelling of the cardiovascular system.

Authors:  Benjamin Owen; Nicholas Bojdo; Andrey Jivkov; Bernard Keavney; Alistair Revell
Journal:  Biomech Model Mechanobiol       Date:  2018-06-18

Review 6.  Current Understanding of the Biomechanics of Ventricular Tissues in Heart Failure.

Authors:  Wenqiang Liu; Zhijie Wang
Journal:  Bioengineering (Basel)       Date:  2019-12-20
  6 in total

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