Laboratory for Mechanical Systems Engineering, Empa Swiss Federal Laboratories for Materials Science and Technology, Dübendorf, Switzerland.
J Mech Behav Biomed Mater. 2012 Sep;13:45-61. doi: 10.1016/j.jmbbm.2012.04.002. Epub 2012 Apr 25.
The knowledge of spinal kinematics is of paramount importance for many aspects of clinical application (i.e. diagnosis, treatment and surgical intervention) and for the development of new spinal implants. The aim of this study was to determine the translational and rotational stiffnesses of a functional spinal unit (FSU) L4-L5 using a specimen-specific finite element model. The results are needed as input data for three-dimensional (3D) multi-body musculoskeletal models in order to simulate vertebral motions and loading in the lumbar spine during daily activities. Within the modelling process, a technique to partition the constitutive members and to calibrate their mechanical properties for the complex model is presented. The material and geometrical non-linearities originating from the disc, the ligaments and the load transfer through the zygapophysial joints were considered. The FSU was subjected to pure moments and forces in the three anatomical planes. For each of the loading scenarios, with and without vertical and follower preload, the presented technique provides results in fair agreement with the literature. The novel representation of the nonlinear behaviour of the translational and rotational stiffness of the disc as a function of the displacement can be used directly as input data for multi-body models.
脊柱运动学的知识对于临床应用的许多方面(如诊断、治疗和手术干预)以及新型脊柱植入物的开发都至关重要。本研究的目的是使用特定于标本的有限元模型来确定 L4-L5 功能脊柱单元 (FSU) 的平移和旋转刚度。这些结果是为了在三维(3D)多体运动骨骼肌肉模型中作为输入数据,以便模拟日常活动中腰椎的椎体运动和载荷。在建模过程中,提出了一种将组成部分划分并校准其复杂模型机械性能的技术。考虑了椎间盘、韧带以及通过关节突关节传递载荷引起的材料和几何非线性。FSU 在三个解剖平面上受到纯力矩和力的作用。对于每种加载情况,包括有无垂直和跟随预加载,所提出的技术提供的结果与文献相符。作为一种新的表示方法,椎间盘的平移和旋转刚度的非线性行为可以作为位移的函数,直接用作多体模型的输入数据。