Fan Wei, Guo Li-Xin
Technol Health Care. 2019;27(4):441-450. doi: 10.3233/THC-181273.
Very few studies have evaluated biomechanical characteristics of the disc degenerated human lumbar spine after bilateral pedicle screw fixation (BPSF) under whole body vibration (WBV) that is typically present in vehicles.
To examine the influence of BPSF on stress responses of the disc degenerated human lumbar spine to WBV using finite element (FE) method.
Two previously validated L1-S1 FE models with different grades of disc degeneration (mild and moderate) at L4-L5 were employed, and the two degenerated models were instrumented with bilateral pedicle screws and rods across the L4-L5 level, respectively. Transit dynamic analyses were performed on all these models under a 400 N compressive follower preload and a 40 N sinusoidal vertical vibration load. Intradiscal pressure (IDP) and von Mises stress (VMS) of the annulus ground substance in all disc levels of the degenerated models and the corresponding implanted models were recorded and compared.
BPSF decreased maximum response values and vibration amplitudes of the IDP and annulus VMS in both the degenerated and adjacent levels of the lumbar spine.
Application of the BPSF system is helpful in prevention of further injury of the disc degenerated lumbar spine during WBV.
很少有研究评估在车辆中常见的全身振动(WBV)情况下,双侧椎弓根螺钉固定(BPSF)后退变的人体腰椎的生物力学特性。
采用有限元(FE)方法研究BPSF对退变的人体腰椎在WBV作用下应力反应的影响。
使用两个先前验证过的L1-S1有限元模型,其L4-L5节段具有不同程度的椎间盘退变(轻度和中度),两个退变模型分别在L4-L5节段植入双侧椎弓根螺钉和连接棒。在400 N的压缩跟随预载荷和40 N的正弦垂直振动载荷下,对所有这些模型进行瞬态动力学分析。记录并比较退变模型和相应植入模型所有椎间盘节段的椎间盘内压力(IDP)和纤维环基质的von Mises应力(VMS)。
BPSF降低了腰椎退变节段及其相邻节段IDP和纤维环VMS的最大反应值和振动幅度。
应用BPSF系统有助于预防退变的腰椎在WBV过程中受到进一步损伤。