The Taylor Collaboration, San Francisco, CA 94117, USA.
J Biomech. 2012 Feb 23;45(4):706-10. doi: 10.1016/j.jbiomech.2011.12.018. Epub 2012 Jan 25.
Pure moment testing has become a standard protocol for in vitro assessment of the effect of surgical techniques or devices on the bending rigidity of the spine. Of the methods used for pure moment testing, cable-driven set-ups are popular due to their low requirements and simple design. Fixed loading rings are traditionally used in conjunction with these cable-driven systems. However, the accuracy and validity of the loading conditions applied with fixed ring designs have raised some concern, and discrepancies have been found between intended and prescribed loading conditions for flexion-extension. This study extends this prior work to include lateral bending and axial torsion, and compares this fixed ring design with a novel "3D floating ring" design. A complete battery of multi-axial bending tests was conducted with both rings in multiple different configurations using an artificial lumbar spine. Applied moments were monitored and recorded by a multi-axial load cell at the base of the specimen. Results indicate that the fixed ring design deviates as much as 77% from intended moments and induces non-trivial shear forces (up to 18 N) when loaded to a non-destructive maximum of 4.5 Nm. The novel 3D floating ring design largely corrects the inherent errors in the fixed ring design by allowing additional directions of unconstrained motion and producing uniform loading conditions along the length of the specimen. In light of the results, it is suggested that the 3D floating ring set-up be used for future pure moment spine biomechanics applications using a cable-driven apparatus.
纯力矩测试已成为体外评估手术技术或器械对脊柱弯曲刚度影响的标准方案。在用于纯力矩测试的方法中,由于其要求低且设计简单,缆索驱动装置很受欢迎。传统上,这些缆索驱动系统与固定加载环一起使用。然而,固定环设计施加的加载条件的准确性和有效性引起了一些关注,并且在屈伸时发现了预期和规定的加载条件之间的差异。本研究将这项先前的工作扩展到包括侧弯和轴向扭转,并将这种固定环设计与一种新颖的“3D 浮动环”设计进行了比较。使用人工腰椎,在多个不同配置下使用两个环进行了完整的多轴弯曲测试。通过位于试件底部的多轴称重传感器监测并记录施加的力矩。结果表明,当固定环设计加载至非破坏性最大 4.5Nm 时,其最大偏差可达 77%,并会产生非平凡的剪切力(高达 18N)。新型 3D 浮动环设计通过允许更多的无约束运动方向,并在试件长度上产生均匀的加载条件,在很大程度上纠正了固定环设计固有的误差。鉴于这些结果,建议在使用缆索驱动装置的未来纯力矩脊柱生物力学应用中使用 3D 浮动环设置。