Ac. Chen et al., Depth- and strain-dependent mechanical and electromechanical properties offull-thickness bovine articular cartilage in confined compression, J BIOMECHAN, 34(1), 2001, pp. 1-12
Compression tests have often been performed to assess the biomechanical pro
perties of full-thickness articular cartilage. We tested whether the appare
nt homogeneous strain-dependent properties, deduced from such tests, reflec
t both strain- and depth-dependent material properties. Full-thickness bovi
ne articular cartilage was tested by oscillatory confined compression super
imposed on a static offset up to 45%, and the data fit to estimate modulus,
permeability, and electrokinetic coefficient assuming homogeneity. Additio
nal tests on partial-thickness cartilage were then performed to assess dept
h- and strain-dependent properties in an inhomogeneous model, assuming thre
e discrete layers (i = 1 starting from the articular surface, to i = 3 up t
o the subchondral bone). Estimates of the zero-strain equilibrium confined
compression modulus (H-A0), the zero-strain permeability (k(p0)) and deform
ation dependence constant (M), and the deformation-depondent electrokinetic
coefficient (k(e)) differed among individual layers of cartilage and full-
thickness cartilage. H-A0(i) increased From layer 1 to 3 (0.27 to 0.71MPa),
and bracketed the apparent homogeneous value (0.47 MPa).k(p0)(i) decreased
from layer 1 to 3 (4.6 x 10-(15) to 0.50 x 10(-15) m/Pa s) and was less th
an the homogeneous value (7.3 x 10(-15) m(2)/Pa s), while M-I increased fro
m layer 1 to 3 (5.5 to 7.4) and became similar to the homogeneous value (8.
4). The amplitude of k(e)(i) increased markedly with compressive strain, as
did the homogeneous value; at low strain, it was lowest near the articular
surface and increased to a peak in the middle-deep region. These results h
elp to interpret the biomechanical assessment of full-thickness articular c
artilage. (C) 2000 Elsevier Science Ltd. All rights reserved.