Analysis of the effect of disc degeneration on dynamic characteristics of the lumbar spine using a whole-human body finite element model

This study aimed to investigate the effects of L4–L5 disc degeneration and different loading frequencies on the dynamic response of the lumbar spine under whole-body vibration. A healthy and a degenerative whole-human body finite element model were developed, with the degenerative model constructed by changing disc height and nucleus pulposus material properties. Both models, coupled with the same seat, underwent 9.8 m/s 2 gravitational acceleration and vertical sinusoidal displacement loads (±5 mm) at 3, 5, and 7 Hz. With disc degeneration, the maximum value and vibration amplitude of nucleus pressure and disc bulge all decreased, while those of annulus stress all increased. Specifically, the maximum value and vibration amplitude of annulus stress under a 5 Hz load were 0.737 and 0.596 MPa respectively, which were 19.3% and 19.0% higher than those of the corresponding healthy model. The dynamic responses under 5 Hz loading were several times higher than those under 3 and 7 Hz loading. Under the same loading condition, the distributions of nucleus pressure and annulus stress in both models remained largely unchanged, and the extreme values were all located in the posterior region of the disc. The results showed that disc degeneration significantly altered the vibration characteristics of the degenerative disc segment. Vibration near the resonance frequency of the human body was more likely to cause spinal injury than that at other frequencies, and the posterior regions of the nucleus and annulus were more susceptible to fatigue damage.

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Publication Details

Journal
Proceedings of the Institution of Mechanical Engineers Part H Journal of Engineering in Medicine
Published
2026-09-24
DOI
https://doi.org/10.1177/09544119261490965
Primary Topic
Spine and Intervertebral Disc Pathology
Type
article
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article

Analysis of the effect of disc degeneration on dynamic characteristics of the lumbar spine using a whole-human body finite element model

Dong‐Xiang Zhang, Wei Fan, Chi Zhang, Jian‐Song Dou
Proceedings of the Institution of Mechanical Engineers Part H Journal of Engineering in Medicine
Spine and Intervertebral Disc Pathology
article

Analysis of the effect of disc degeneration on dynamic characteristics of the lumbar spine using a whole-human body finite element model

Dong‐Xiang Zhang, Wei Fan, Chi Zhang, Jian‐Song Dou
article en

Abstract

This study aimed to investigate the effects of L4–L5 disc degeneration and different loading frequencies on the dynamic response of the lumbar spine under whole-body vibration. A healthy and a degenerative whole-human body finite element model were developed, with the degenerative model constructed by changing disc height and nucleus pulposus material properties. Both models, coupled with the same seat, underwent 9.8 m/s 2 gravitational acceleration and vertical sinusoidal displacement loads (±5 mm) at 3, 5, and 7 Hz. With disc degeneration, the maximum value and vibration amplitude of nucleus pressure and disc bulge all decreased, while those of annulus stress all increased. Specifically, the maximum value and vibration amplitude of annulus stress under a 5 Hz load were 0.737 and 0.596 MPa respectively, which were 19.3% and 19.0% higher than those of the corresponding healthy model. The dynamic responses under 5 Hz loading were several times higher than those under 3 and 7 Hz loading. Under the same loading condition, the distributions of nucleus pressure and annulus stress in both models remained largely unchanged, and the extreme values were all located in the posterior region of the disc. The results showed that disc degeneration significantly altered the vibration characteristics of the degenerative disc segment. Vibration near the resonance frequency of the human body was more likely to cause spinal injury than that at other frequencies, and the posterior regions of the nucleus and annulus were more susceptible to fatigue damage.

Proceedings of the Institution of Mechanical Engineers Part H Journal of Engineering in Medicine
Liaoning University of Technology (CN), Northeastern University (CN)
Openalex Percentile: Top 12%
Spine and Intervertebral Disc Pathology
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Analysis of the effect of disc degeneration on dynamic characteristics of the lumbar spine using a whole-human body finite element model — Dong‐Xiang Zhang, Wei Fan, et al. · Proceedings of the Institution of Mechanical Engineers Part H Journal of Engineering in Medicine (2026) | TGRS Research Map | TGRS