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Analysis of the impact responses in a degenerated spinal motion segment FE model
YoungEun Kim
The Journal of Mechanical Science and Technology, vol. 23, no. 1, pp.19-25, 2009
Abstract : A three-dimensional non-linear poroelastic finite element model of an L3/L4 motion segment was used to analyze
the biomechanical effects of degeneration under impact loading on the spinal segment. A previously developed degeneration
algorithm was applied to generate a degenerated disc model. Regional variation in intact vertebral body bone
morphology was simulated by assigning different void ratios of 4.0-5.02, which were assessed for 27 regions of vertebral
cancellous bone. For the osteoporotic structure of the vertebral body, the body was divided into 5 regions with 10-
24 void ratios. Different material properties were assigned to the annulus fibers; hereupon our annulus model reflected
variation in tensile behavior of multiple layer annulus samples. The impact load applied to the top of the L3 vertebral
body was assumed to be a triangular impulsive force with a maximum compressive impact load of 3 kN and 20ms
impact duration time. Calculated results indicated that the effect of the degeneration was predominant at the center of
the vertebral body. The maximum von Mises stress was found at the region of near the endplate. The degeneration
increased the averaged stress at the center of the vertebral body of L3 from 1.54 MPa to 1.69 MPa, the stress remaining
relatively small at L4. Decreased fluid volume ratio of the degenerated nucleus tended to increase pressure slightly at
the nucleus, and the averaged stress at the nucleus was almost doubled compared to the intact case. The innermost
layers of the anterior annulus showed the highest stress concentration, followed by outermost anterior and posterior
regions, for both the degenerated and the intact models. Despite an irregular stress distribution in the degenerated
model, pore pressure showed relatively uniform distribution.
Keyword : Spine; Poroelastic model; Finite element model; Impact loading; Degeneration |
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