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椎间盘高度对同一轴向载荷下腰椎柱各组成部分的生物力学影响:有限元研究。

Biomechanical Effect of Disc Height on the Components of the Lumbar Column at the Same Axial Load: A Finite-Element Study.

机构信息

Department of Rehabilitation Medicine, Kyungpook National University Hospital, Daegu 41944, Republic of Korea.

Precision Mechanical Process and Control R&D Group, Korea Institute of Industrial Technology, Jinju-si, Gyeongsangnam-do 52845, Republic of Korea.

出版信息

J Healthc Eng. 2022 Oct 25;2022:7069448. doi: 10.1155/2022/7069448. eCollection 2022.

Abstract

Intervertebral discs are fibrocartilage structures, which play a role in buffering the compression applied to the vertebral bodies evenly while permitting limited movements. According to several previous studies, degenerative changes in the intervertebral disc could be accelerated by factors, such as aging, the female sex, obesity, and smoking. As degenerative change progresses, the disc height could be reduced due to the dehydration of the nucleus pulposus. This study aimed to quantitatively analyze the pressure that each structure of the spine receives according to the change in the disc height and predict the physiological effect of disc height on the spine. We analyzed the biomechanical effect on spinal structures when the disc height was decreased using a finite-element method investigation of the lumbar spine. Using a 3D FE model, the degree and distribution of von-Mises stress according to the disc height change were measured by applying the load of four different motions to the lumbar spine. The height was changed by dividing the anterior and posterior parts of the disc, and analysis was performed in the following four motions: flexion, extension, lateral bending, and axial rotation. Except for a few circumstances, the stress applied to the structure generally increased as the disc height decreased. Such a phenomenon was more pronounced when the direction in which the force was concentrated coincided with the portion where the disc height decreased. This study demonstrated that the degree of stress applied to the spinal structure generally increases as the disc height decreases. The increase in stress was more prominent when the part where the disc height was decreased and the part where the moment was additionally applied coincided. Disc height reduction could accelerate degenerative changes in the spine. Therefore, eliminating the controllable risk factors that cause disc height reduction may be beneficial for spinal health.

摘要

椎间盘是纤维软骨结构,在均匀缓冲施加于椎体的压缩力的同时允许有限的运动。根据几项先前的研究,椎间盘的退行性变化可能会因衰老、女性、肥胖和吸烟等因素而加速。随着退行性变化的进展,由于核髓的脱水,椎间盘高度可能会降低。本研究旨在定量分析脊柱各结构在椎间盘高度变化时所承受的压力,并预测椎间盘高度对脊柱的生理影响。我们使用有限元方法研究了腰椎,分析了椎间盘高度降低对脊柱结构的生物力学影响。使用 3D FE 模型,通过向腰椎施加四种不同运动的载荷,测量了椎间盘高度变化时根据 von-Mises 应力变化的程度和分布。通过分割椎间盘的前后部分来改变高度,并在以下四个运动中进行了分析:屈曲、伸展、侧屈和轴向旋转。除了少数情况外,一般来说,随着椎间盘高度的降低,施加到结构上的应力会增加。当力集中的方向与椎间盘高度降低的部位一致时,这种现象更为明显。本研究表明,随着椎间盘高度的降低,脊柱结构所承受的应力程度通常会增加。当椎间盘高度降低的部位和额外施加力矩的部位重合时,应力的增加更为显著。椎间盘高度的降低可能会加速脊柱的退行性变化。因此,消除导致椎间盘高度降低的可控危险因素可能有益于脊柱健康。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ac0/9626214/48c4945eda11/JHE2022-7069448.001.jpg

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