Zhang Chi, Guo Li-Xin
School of Mechanical Engineering and Automation, Northeastern University, Shenyang, China.
Int J Numer Method Biomed Eng. 2023 Dec;39(12):e3764. doi: 10.1002/cnm.3764. Epub 2023 Aug 4.
Low back pain has been reported to have a high prevalence among occupational drivers. Whole-body vibration during the driving environment has been found to be a possible factor leading to low back pain. Vibration loads might lead to degeneration and herniation of the intervertebral disc, which would increase incidence of low back problems among drivers. Some previous studies have reported the effects of whole-body vibration on the human body, but studies on the internal dynamic responses of the lumbar spine under multi-axis vibration are limited. In this study, the internal biomechanical response of the intervertebral disc was extracted to investigate the biomechanical behaviour of the lumbar spine under a multi-axial vibration in a whole-body environment. A whole-body finite element model, including skin, soft tissues, the bone skeleton, internal organs and a detailed ligamentous lumbar spine, was used to provide a whole-body condition for analyses. The results showed that both vibrations close to vertical and fore-and-aft resonance frequencies would increase the transmission of vibrations in the intervertebral disc, and vertical vibration might have a greater effect on the lumbar spine than fore-and-aft vibration. The larger deformation of the posterior region of the intervertebral disc in a multi-axis vibration environment might contribute to the higher susceptibility of the posterior region of the intervertebral disc to injury. The findings of this study revealed the dynamic behaviours of the lumbar spine in multi-axis vehicle vibration conditions, and suggested that both vertical and fore-and-aft vibration should be considered for protecting the lumbar health of occupational drivers.
据报道,职业司机中腰痛的患病率很高。人们发现,驾驶环境中的全身振动可能是导致腰痛的一个因素。振动负荷可能会导致椎间盘退变和突出,这会增加司机腰部问题的发生率。此前一些研究报告了全身振动对人体的影响,但关于腰椎在多轴振动下的内部动态响应的研究有限。在本研究中,提取了椎间盘的内部生物力学响应,以研究在全身环境下多轴振动时腰椎的生物力学行为。使用了一个包括皮肤、软组织、骨骼、内脏器官和详细的腰椎韧带结构的全身有限元模型,为分析提供全身条件。结果表明,接近垂直共振频率和前后共振频率的振动都会增加椎间盘内的振动传递,并且垂直振动对腰椎的影响可能比前后振动更大。在多轴振动环境下,椎间盘后部区域的较大变形可能导致椎间盘后部区域更容易受伤。本研究结果揭示了腰椎在多轴车辆振动条件下的动态行为,并建议在保护职业司机的腰部健康时应同时考虑垂直振动和前后振动。