Literature DB >> 12623436

Dynamic finite element implementation of nonlinear, anisotropic hyperelastic biological membranes.

D R Einstein1, P Reinhall, M Nicosia, R P Cochran, K Kunzelman.   

Abstract

We present a novel method for the implementation of hyperelastic finite strain, non-linear strain-energy functions for biological membranes in an explicit finite element environment. The technique is implemented in LS-DYNA but may also be implemented in any suitable non-linear explicit code. The constitutive equations are implemented on the foundation of a co-rotational uniformly reduced Hughes-Liu shell. This shell is based on an updated-Lagrangian formulation suitable for relating Cauchy stress to the rate-of-deformation, i.e. hypo-elasticity. To accommodate finite deformation hyper-elastic formulations, a co-rotational deformation gradient is assembled over time, resulting in a formulation suitable for pseudo-hyperelastic constitutive equations that are standard assumptions in biomechanics. Our method was validated by comparison with (1) an analytic solution to a spherically-symmetric dynamic membrane inflation problem, incorporating a Mooney-Rivlin hyperelastic equation and (2) with previously published finite element solutions to a non-linear transversely isotropic inflation problem. Finally, we implemented a transversely isotropic strain-energy function for mitral valve tissue. The method is simple and accurate and is believed to be generally useful for anyone who wishes to model biologic membranes with an experimentally driven strain-energy function.

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Year:  2003        PMID: 12623436     DOI: 10.1080/1025584021000048983

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


  10 in total

Review 1.  Verification, validation and sensitivity studies in computational biomechanics.

Authors:  Andrew E Anderson; Benjamin J Ellis; Jeffrey A Weiss
Journal:  Comput Methods Biomech Biomed Engin       Date:  2007-06       Impact factor: 1.763

2.  Fluid-structure interaction models of the mitral valve: function in normal and pathological states.

Authors:  K S Kunzelman; D R Einstein; R P Cochran
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2007-08-29       Impact factor: 6.237

3.  Effects of mitral chordae tendineae on the flow in the left heart ventricle.

Authors:  Valentina Meschini; Marco D de Tullio; Roberto Verzicco
Journal:  Eur Phys J E Soft Matter       Date:  2018-02-28       Impact factor: 1.890

4.  Finite element modeling of mitral leaflet tissue using a layered shell approximation.

Authors:  Jonathan F Wenk; Mark B Ratcliffe; Julius M Guccione
Journal:  Med Biol Eng Comput       Date:  2012-09-13       Impact factor: 2.602

5.  On the in vivo deformation of the mitral valve anterior leaflet: effects of annular geometry and referential configuration.

Authors:  Rouzbeh Amini; Chad E Eckert; Kevin Koomalsingh; Jeremy McGarvey; Masahito Minakawa; Joseph H Gorman; Robert C Gorman; Michael S Sacks
Journal:  Ann Biomed Eng       Date:  2012-02-11       Impact factor: 3.934

Review 6.  Mechanics of the mitral valve: a critical review, an in vivo parameter identification, and the effect of prestrain.

Authors:  Manuel K Rausch; Nele Famaey; Tyler O'Brien Shultz; Wolfgang Bothe; D Craig Miller; Ellen Kuhl
Journal:  Biomech Model Mechanobiol       Date:  2012-12-21

7.  A finite strain nonlinear human mitral valve model with fluid-structure interaction.

Authors:  Hao Gao; Xingshuang Ma; Nan Qi; Colin Berry; Boyce E Griffith; Xiaoyu Luo
Journal:  Int J Numer Method Biomed Eng       Date:  2014-11-26       Impact factor: 2.747

8.  Modelling mitral valvular dynamics-current trend and future directions.

Authors:  Hao Gao; Nan Qi; Liuyang Feng; Xingshuang Ma; Mark Danton; Colin Berry; Xiaoyu Luo
Journal:  Int J Numer Method Biomed Eng       Date:  2017-02-16       Impact factor: 2.747

9.  A coupled mitral valve-left ventricle model with fluid-structure interaction.

Authors:  Hao Gao; Liuyang Feng; Nan Qi; Colin Berry; Boyce E Griffith; Xiaoyu Luo
Journal:  Med Eng Phys       Date:  2017-07-25       Impact factor: 2.242

10.  The role of traction in membrane curvature generation.

Authors:  H Alimohamadi; R Vasan; J E Hassinger; J C Stachowiak; P Rangamani
Journal:  Mol Biol Cell       Date:  2018-07-25       Impact factor: 4.138

  10 in total

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