Literature DB >> 24746842

Simulation of planar soft tissues using a structural constitutive model: Finite element implementation and validation.

Rong Fan1, Michael S Sacks2.   

Abstract

Computational implementation of physical and physiologically realistic constitutive models is critical for numerical simulation of soft biological tissues in a variety of biomedical applications. It is well established that the highly nonlinear and anisotropic mechanical behaviors of soft tissues are an emergent behavior of the underlying tissue microstructure. In the present study, we have implemented a structural constitutive model into a finite element framework specialized for membrane tissues. We noted that starting with a single element subjected to uniaxial tension, the non-fibrous tissue matrix must be present to prevent unrealistic tissue deformations. Flexural simulations were used to set the non-fibrous matrix modulus because fibers have little effects on tissue deformation under three-point bending. Multiple deformation modes were simulated, including strip biaxial, planar biaxial with two attachment methods, and membrane inflation. Detailed comparisons with experimental data were undertaken to insure faithful simulations of both the macro-level stress-strain insights into adaptations of the fiber architecture under stress, such as fiber reorientation and fiber recruitment. Results indicated a high degree of fidelity and demonstrated interesting microstructural adaptions to stress and the important role of the underlying tissue matrix. Moreover, we apparently resolve a discrepancy in our 1997 study (Billiar and Sacks, 1997. J. Biomech. 30 (7), 753-756) where we observed that under strip biaxial stretch the simulated fiber splay responses were not in good agreement with the experimental results, suggesting non-affine deformations may have occurred. However, by correctly accounting for the isotropic phase of the measured fiber splay, good agreement was obtained. While not the final word, these simulations suggest that affine fiber kinematics for planar collagenous tissues is a reasonable assumption at the macro level. Simulation tools such as these are imperative in the design and simulation of native and engineered tissues.
Copyright © 2014 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Biomechanics; Constitutive modeling; Finite element; Multiscale modeling; Structural model

Mesh:

Substances:

Year:  2014        PMID: 24746842      PMCID: PMC4047197          DOI: 10.1016/j.jbiomech.2014.03.014

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  41 in total

1.  Incorporation of experimentally-derived fiber orientation into a structural constitutive model for planar collagenous tissues.

Authors:  Michael S Sacks
Journal:  J Biomech Eng       Date:  2003-04       Impact factor: 2.097

2.  Boundary conditions during biaxial testing of planar connective tissues. Part 1: dynamic behavior.

Authors:  Stephen D Waldman; J Michael Lee
Journal:  J Mater Sci Mater Med       Date:  2002-10       Impact factor: 3.896

3.  Design and analysis of tissue engineering scaffolds that mimic soft tissue mechanical anisotropy.

Authors:  Todd Courtney; Michael S Sacks; John Stankus; Jianjun Guan; William R Wagner
Journal:  Biomaterials       Date:  2006-03-20       Impact factor: 12.479

4.  Modeling the mechanics of tissue-engineered human heart valve leaflets.

Authors:  Niels J B Driessen; Anita Mol; Carlijn V C Bouten; Frank P T Baaijens
Journal:  J Biomech       Date:  2006-03-10       Impact factor: 2.712

5.  Spatial orientation of collagen fibers in the abdominal aortic aneurysm's wall and its relation to wall mechanics.

Authors:  T Christian Gasser; Sara Gallinetti; Xiao Xing; Caroline Forsell; Jesper Swedenborg; Joy Roy
Journal:  Acta Biomater       Date:  2012-05-11       Impact factor: 8.947

6.  A structural theory for the homogeneous biaxial stress-strain relationships in flat collagenous tissues.

Authors:  Y Lanir
Journal:  J Biomech       Date:  1979       Impact factor: 2.712

7.  A microstructurally driven model for pulmonary artery tissue.

Authors:  Philip H Kao; Steven R Lammers; Lian Tian; Kendall Hunter; Kurt R Stenmark; Robin Shandas; H Jerry Qi
Journal:  J Biomech Eng       Date:  2011-05       Impact factor: 2.097

8.  Interlayer micromechanics of the aortic heart valve leaflet.

Authors:  Rachel M Buchanan; Michael S Sacks
Journal:  Biomech Model Mechanobiol       Date:  2013-11-30

9.  A closed-form structural model of planar fibrous tissue mechanics.

Authors:  Ramesh Raghupathy; Victor H Barocas
Journal:  J Biomech       Date:  2009-05-19       Impact factor: 2.712

10.  An inverse modeling approach for stress estimation in mitral valve anterior leaflet valvuloplasty for in-vivo valvular biomaterial assessment.

Authors:  Chung-Hao Lee; Rouzbeh Amini; Robert C Gorman; Joseph H Gorman; Michael S Sacks
Journal:  J Biomech       Date:  2013-11-08       Impact factor: 2.712

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  42 in total

1.  A novel fibre-ensemble level constitutive model for exogenous cross-linked collagenous tissues.

Authors:  Michael S Sacks; Will Zhang; Silvia Wognum
Journal:  Interface Focus       Date:  2016-02-06       Impact factor: 3.906

2.  An anisotropic constitutive model for immersogeometric fluid-structure interaction analysis of bioprosthetic heart valves.

Authors:  Michael C H Wu; Rana Zakerzadeh; David Kamensky; Josef Kiendl; Michael S Sacks; Ming-Chen Hsu
Journal:  J Biomech       Date:  2018-04-12       Impact factor: 2.712

3.  A generalized method for the analysis of planar biaxial mechanical data using tethered testing configurations.

Authors:  Will Zhang; Yuan Feng; Chung-Hao Lee; Kristen L Billiar; Michael S Sacks
Journal:  J Biomech Eng       Date:  2015-04-15       Impact factor: 2.097

4.  Structural constitutive modeling of the anisotropic mechanical properties of human vocal fold lamina propria.

Authors:  Zhaoyan Zhang
Journal:  J Acoust Soc Am       Date:  2019-06       Impact factor: 1.840

5.  A comprehensive pipeline for multi-resolution modeling of the mitral valve: Validation, computational efficiency, and predictive capability.

Authors:  Andrew Drach; Amir H Khalighi; Michael S Sacks
Journal:  Int J Numer Method Biomed Eng       Date:  2017-09-05       Impact factor: 2.747

6.  Immersogeometric cardiovascular fluid-structure interaction analysis with divergence-conforming B-splines.

Authors:  David Kamensky; Ming-Chen Hsu; Yue Yu; John A Evans; Michael S Sacks; Thomas J R Hughes
Journal:  Comput Methods Appl Mech Eng       Date:  2016-08-04       Impact factor: 6.756

7.  Numerical Approximation of Elasticity Tensor Associated With Green-Naghdi Rate.

Authors:  Haofei Liu; Wei Sun
Journal:  J Biomech Eng       Date:  2017-08-01       Impact factor: 2.097

8.  Mitral valve leaflet remodelling during pregnancy: insights into cell-mediated recovery of tissue homeostasis.

Authors:  Bruno V Rego; Sarah M Wells; Chung-Hao Lee; Michael S Sacks
Journal:  J R Soc Interface       Date:  2016-12       Impact factor: 4.118

9.  Modeling the effect of collagen fibril alignment on ligament mechanical behavior.

Authors:  Christina J Stender; Evan Rust; Peter T Martin; Erica E Neumann; Raquel J Brown; Trevor J Lujan
Journal:  Biomech Model Mechanobiol       Date:  2017-11-24

10.  Isogeometric Kirchhoff-Love shell formulations for biological membranes.

Authors:  Adrián Buganza Tepole; Hardik Kabaria; Kai-Uwe Bletzinger; Ellen Kuhl
Journal:  Comput Methods Appl Mech Eng       Date:  2015-08-15       Impact factor: 6.756

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