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Journal article · 2026

Non-linear stiffness and damping properties of human intervertebral discs in compression and flexion at high-rates of loading

Lucas Low, Spyros Masouros, Nicolas Newell

Journal of the Mechanical Behavior of Biomedical Materials, 2026

Abstract

High-loading rate events such as automotive collisions, aircraft ejection, and underbody blast can result in severe spinal injuries. Computational models aim to predict injuries to enable future safety improvements but require a detailed understanding of the high-rate mechanical response of the spine's structures, particularly the intervertebral discs. This study aimed to characterise the compressive and flexion stiffness properties of human intervertebral discs across all levels of the spine, using an inverse modelling approach. Vertebral body-disc-vertebral body segments from each level of four human cadaveric spines were subjected to increasing rates of loading in both compression and flexion using a servo-hydraulic machine for lower rates, and a drop tower for higher rates. A multibody model was developed for each segment (two degree-of-freedom spring), and an inverse method was used to calculate the non-linear disc response that matched the one measured experimentally. Compressive loads were applied at mean strain rates of 0.82, 4.54, 6.71 and 30.35/s and flexion loads were applied at mean rates of 0.28, 1.92, 4.19 and 12.46 rad/s. Differences were observed between spinal…

Cite as (BibTeX)

@article{low-2026-non-linear-stiffness-and,
  title={Non-linear stiffness and damping properties of human intervertebral discs in compression and flexion at high-rates of loading},
  author={Lucas Low and Spyros Masouros and Nicolas Newell},
  journal={Journal of the Mechanical Behavior of Biomedical Materials},
  year={2026},
  doi={10.1016/j.jmbbm.2026.107479}
}

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