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


Autoria(s): Silva, P.; Crozier, S.; Veidt, M.; Pearcy, M. J.
Contribuinte(s)

William Bonfield

Data(s)

01/07/2005

Resumo

A hydrogel intervertebral disc (lVD) model consisting of an inner nucleus core and an outer anulus ring was manufactured from 30 and 35% by weight Poly(vinyl alcohol) hydrogel (PVA-H) concentrations and subjected to axial compression in between saturated porous endplates at 200 N for 11 h, 30 min. Repeat experiments (n = 4) on different samples (N = 2) show good reproducibility of fluid loss and axial deformation. An axisymmetric nonlinear poroelastic finite element model with variable permeability was developed using commercial finite element software to compare axial deformation and predicted fluid loss with experimental data. The FE predictions indicate differential fluid loss similar to that of biological IVDs, with the nucleus losing more water than the anulus, and there is overall good agreement between experimental and finite element predicted fluid loss. The stress distribution pattern indicates important similarities with the biological lVD that includes stress transference from the nucleus to the anulus upon sustained loading and renders it suitable as a model that can be used in future studies to better understand the role of fluid and stress in biological IVDs. (C) 2005 Springer Science + Business Media, Inc.

Identificador

http://espace.library.uq.edu.au/view/UQ:75773

Idioma(s)

eng

Publicador

Kluwer Academic

Palavras-Chave #Materials Science, Biomaterials #Poly(vinyl Alcohol) Hydrogel #Permeability #Mechanics #Engineering, Biomedical #C1 #290399 Manufacturing Engineering not elsewhere classified #780102 Physical sciences
Tipo

Journal Article