Literature DB >> 8884478

Poroelastic creep response analysis of a lumbar motion segment in compression.

M Argoubi1, A Shirazi-Adl.   

Abstract

The nonlinear three-dimensional poroelastic creep response of a lumbar motion segment under a constant axial compression (400, 1200, or 2000 N) is investigated for a period of 2 h. The role of facet joints, strain-dependent variable permeability, boundary pore pressure, and coupled sagittal rotation on response is studied. Biomechanics of annulus excision, nucleotomy, and facetectomy are also investigated. Both material and geometric nonlinearities are considered. The annulus bulk is modelled as a nonhomogeneous composite of collagenous fibers and annulus bulk. As time progresses, axial displacement increases, pore pressure decreases, annulus bulk undergoes larger compressive stresses, fiber layers become slack, and facets carry larger loads. Surgical alterations markedly soften the temporal response and increase facets forces. In contrast, the strain-dependent variable permeability and boundary pore pressure stiffen the response and decrease forces on the facets. Changes in the nucleus fluid content, facet joints, boundary pore pressure, and disc permeability markedly influence the lumbar biomechanics.

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Year:  1996        PMID: 8884478     DOI: 10.1016/0021-9290(96)00035-8

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


  30 in total

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2.  An experimental and finite element poroelastic creep response analysis of an intervertebral hydrogel disc model in axial compression.

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3.  Inclusion of regional poroelastic material properties better predicts biomechanical behavior of lumbar discs subjected to dynamic loading.

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4.  Osmoviscoelastic finite element model of the intervertebral disc.

Authors:  Yvonne Schroeder; Wouter Wilson; Jacques M Huyghe; Frank P T Baaijens
Journal:  Eur Spine J       Date:  2006-05-25       Impact factor: 3.134

5.  Internal three-dimensional strains in human intervertebral discs under axial compression quantified noninvasively by magnetic resonance imaging and image registration.

Authors:  Jonathon H Yoder; John M Peloquin; Gang Song; Nick J Tustison; Sung M Moon; Alexander C Wright; Edward J Vresilovic; James C Gee; Dawn M Elliott
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6.  An Anisotropic Multiphysics Model for Intervertebral Disk.

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Journal:  J Appl Mech       Date:  2015-11-09       Impact factor: 2.168

7.  Initiation and progression of mechanical damage in the intervertebral disc under cyclic loading using continuum damage mechanics methodology: A finite element study.

Authors:  Muhammad Qasim; Raghu N Natarajan; Howard S An; Gunnar B J Andersson
Journal:  J Biomech       Date:  2012-06-08       Impact factor: 2.712

8.  The mechanical response of the lumbar spine to different combinations of disc degenerative changes investigated using randomized poroelastic finite element models.

Authors:  Fabio Galbusera; Hendrik Schmidt; Cornelia Neidlinger-Wilke; Andreas Gottschalk; Hans-Joachim Wilke
Journal:  Eur Spine J       Date:  2010-10-10       Impact factor: 3.134

9.  Axial creep loading and unloaded recovery of the human intervertebral disc and the effect of degeneration.

Authors:  Grace D O'Connell; Nathan T Jacobs; Sounok Sen; Edward J Vresilovic; Dawn M Elliott
Journal:  J Mech Behav Biomed Mater       Date:  2011-02-22

10.  Material properties in unconfined compression of human nucleus pulposus, injectable hyaluronic acid-based hydrogels and tissue engineering scaffolds.

Authors:  Jordan M Cloyd; Neil R Malhotra; Lihui Weng; Weiliam Chen; Robert L Mauck; Dawn M Elliott
Journal:  Eur Spine J       Date:  2007-07-28       Impact factor: 3.134

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