Tsouknidas Alexander, Michailidis Nikoalos, Savvakis Savvas, Anagnostidis Kleovoulos, Bouzakis Konstantinos-Dionysios, Kapetanos Georgios
Laboratory for Machine Tools and Manufacturing Engineering, Mechanical Engineering Department, Aristoteles University of Thessaloniki, Greece.
J Appl Biomech. 2012 Aug;28(4):448-56. doi: 10.1123/jab.28.4.448. Epub 2011 Nov 14.
This study presents a CT-based finite element model of the lumbar spine taking into account all function-related boundary conditions, such as anisotropy of mechanical properties, ligaments, contact elements, mesh size, etc. Through advanced mesh generation and employment of compound elements, the developed model is capable of assessing the mechanical response of the examined spine segment for complex loading conditions, thus providing valuable insight on stress development within the model and allowing the prediction of critical loading scenarios. The model was validated through a comparison of the calculated force-induced inclination/deformation and a correlation of these data to experimental values. The mechanical response of the examined functional spine segment was evaluated, and the effect of the loading scenario determined for both vertebral bodies as well as the connecting intervertebral disc.
本研究提出了一种基于CT的腰椎有限元模型,该模型考虑了所有与功能相关的边界条件,如力学性能各向异性、韧带、接触单元、网格尺寸等。通过先进的网格生成和复合单元的应用,所开发的模型能够评估所检查脊柱节段在复杂加载条件下的力学响应,从而为模型内的应力发展提供有价值的见解,并允许预测关键加载情况。通过比较计算得出的力致倾斜/变形以及这些数据与实验值的相关性,对该模型进行了验证。评估了所检查的功能性脊柱节段的力学响应,并确定了加载情况对椎体以及连接椎间盘的影响。