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椎间盘材料模型对颈椎力学功能预测的重要性。

The importance of intervertebral disc material model on the prediction of mechanical function of the cervical spine.

作者信息

Komeili Amin, Rasoulian Akbar, Moghaddam Fatemeh, El-Rich Marwan, Li Le Ping

机构信息

School of Engineering, University of Guelph, Guelph, Canada.

Healthcare Engineering Innovation Center, Department of Mechanical Engineering, Khalifa University, Abu Dhabi, United Arab Emirates.

出版信息

BMC Musculoskelet Disord. 2021 Apr 2;22(1):324. doi: 10.1186/s12891-021-04172-1.

Abstract

BACKGROUND

Linear elastic, hyperelastic, and multiphasic material constitutive models are frequently used for spinal intervertebral disc simulations. While the characteristics of each model are known, their effect on spine mechanical response requires a careful investigation. The use of advanced material models may not be applicable when material constants are not available, model convergence is unlikely, and computational time is a concern. On the other hand, poor estimations of tissue's mechanical response are likely if the spine model is oversimplified. In this study, discrepancies in load response introduced by material models will be investigated.

METHODS

Three fiber-reinforced C2-C3 disc models were developed with linear elastic, hyperelastic, and biphasic behaviors. Three different loading modes were investigated: compression, flexion and extension in quasi-static and dynamic conditions. The deformed disc height, disc fluid pressure, range of motion, and stresses were compared.

RESULTS

Results indicated that the intervertebral disc material model has a strong effect on load-sharing and disc height change when compression and flexion were applied. The predicted mechanical response of three models under extension had less discrepancy than its counterparts under flexion and compression. The fluid-solid interaction showed more relevance in dynamic than quasi-static loading conditions. The fiber-reinforced linear elastic and hyperelastic material models underestimated the load-sharing of the intervertebral disc annular collagen fibers.

CONCLUSION

This study confirmed the central role of the disc fluid pressure in spinal load-sharing and highlighted loading conditions where linear elastic and hyperelastic models predicted energy distribution different than that of the biphasic model.

摘要

背景

线性弹性、超弹性和多相材料本构模型常用于脊柱椎间盘模拟。虽然每个模型的特性已知,但其对脊柱力学响应的影响需要仔细研究。当材料常数不可用时,先进材料模型可能不适用,模型收敛性不太可能实现,并且计算时间也是一个问题。另一方面,如果脊柱模型过于简化,则可能对组织力学响应估计不足。在本研究中,将研究材料模型引入的载荷响应差异。

方法

开发了具有线性弹性、超弹性和双相行为的三种纤维增强C2-C3椎间盘模型。研究了三种不同的加载模式:准静态和动态条件下的压缩、屈曲和伸展。比较了变形后的椎间盘高度、椎间盘内液压、运动范围和应力。

结果

结果表明,当施加压缩和屈曲时,椎间盘材料模型对载荷分担和椎间盘高度变化有很大影响。三种模型在伸展状态下预测的力学响应差异小于其在屈曲和压缩状态下的差异。在动态加载条件下,流固相互作用比准静态加载条件下更显著。纤维增强线性弹性和超弹性材料模型低估了椎间盘环形胶原纤维的载荷分担。

结论

本研究证实了椎间盘内液压在脊柱载荷分担中的核心作用,并强调了线性弹性和超弹性模型预测的能量分布与双相模型不同的加载条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a1cf/8017640/b1a61767b539/12891_2021_4172_Fig1_HTML.jpg

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