Literature DB >> 17887888

Hyperelastic anisotropic microplane constitutive model for annulus fibrosus.

Ferhun C Caner1, Zaoyang Guo, Brian Moran, Zdenek P Bazant, Ignacio Carol.   

Abstract

In a recent paper, Peng et al. (2006, "An Anisotropic Hyperelastic Constitutive Model With Fiber-Matrix Interaction for the Human Annulus Fibrosis," ASME J. Appl. Mech., 73(5), pp. 815-824) developed an anisotropic hyperelastic constitutive model for the human annulus fibrosus in which fiber-matrix interaction plays a crucial role in simulating experimental observations reported in the literature. Later, Guo et al. (2006, "A Composites-Based Hyperelastic Constitutive Model for Soft Tissue With Application to the Human Fibrosis," J. Mech. Phys. Solids, 54(9), pp. 1952-1971) used fiber reinforced continuum mechanics theory to formulate a model in which the fiber-matrix interaction was simulated using only composite effect. It was shown in these studies that the classical anisotropic hyperelastic constitutive models for soft tissue, which do not account for this shear interaction, cannot accurately simulate the test data on human annulus fibrosus. In this study, we show that the microplane model for soft tissue developed by Caner and Carol (2006, "Microplane Constitutive Model and Computational Framework for Blood Vessel Tissue," ASME J. Biomech. Eng., 128(3), pp. 419-427) can be adjusted for human annulus fibrosus and the resulting model can accurately simulate the experimental observations without explicit fiber-matrix interaction because, in microplane model, the shear interaction between the individual fibers distributed in the tissue provides the required additional rigidity to explain these experimental facts. The intensity of the shear interaction between the fibers can be adjusted by adjusting the spread in the distribution while keeping the total amount of the fiber constant. A comparison of results obtained from (i) a fiber-matrix parallel coupling model, which does not account for the fiber-matrix interaction, (ii) the same model but enriched with fiber-matrix interaction, and (iii) microplane model for soft tissue adapted to annulus fibrosus with two families of fiber distributions is presented. The conclusions are (i) that varying degrees of fiber-fiber and fiber-matrix shear interaction must be taking place in the human annulus fibrosus, (ii) that this shear interaction is essential to be able to explain the mechanical behavior of human annulus fibrosus, and (iii) that microplane model can be fortified with fiber-matrix interaction in a straightforward manner provided that there are new experimental data on distribution of fibers, which indicate a spread so small that it requires an explicit fiber-matrix interaction to be able to simulate the experimental data.

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Year:  2007        PMID: 17887888     DOI: 10.1115/1.2768378

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  4 in total

1.  Theoretical and uniaxial experimental evaluation of human annulus fibrosus degeneration.

Authors:  Grace D O'Connell; Heather L Guerin; Dawn M Elliott
Journal:  J Biomech Eng       Date:  2009-11       Impact factor: 2.097

2.  ISSLS prize winner: integrating theoretical and experimental methods for functional tissue engineering of the annulus fibrosus.

Authors:  Nandan L Nerurkar; Robert L Mauck; Dawn M Elliott
Journal:  Spine (Phila Pa 1976)       Date:  2008-12-01       Impact factor: 3.468

3.  Derivation of inter-lamellar behaviour of the intervertebral disc annulus.

Authors:  Marlène Mengoni; Bethany J Luxmoore; Vithanage N Wijayathunga; Alison C Jones; Neil D Broom; Ruth K Wilcox
Journal:  J Mech Behav Biomed Mater       Date:  2015-04-13

4.  Poroelastic Modeling of Highly Hydrated Collagen Hydrogels: Experimental Results vs. Numerical Simulation With Custom and Commercial Finite Element Solvers.

Authors:  André P G Castro; Jiang Yao; Tom Battisti; Damien Lacroix
Journal:  Front Bioeng Biotechnol       Date:  2018-10-23
  4 in total

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