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同时多点测量微动、下沉和间隙,以评估股骨柄稳定性。

Simultaneous and multisite measure of micromotion, subsidence and gap to evaluate femoral stem stability.

机构信息

Laboratory of Biomechanical Orthopedics, Ecole Polytechnique Fédérale de Lausanne, Station 19, 1015 Lausanne, Switzerland.

出版信息

J Biomech. 2012 Apr 30;45(7):1232-8. doi: 10.1016/j.jbiomech.2012.01.040. Epub 2012 Feb 20.

Abstract

The initial stability of cementless femoral components is crucial for the long-term success of total hip arthroplasty. This has been reported in animal and clinical studies. Until now, the stability was evaluated by the measurement of relative micromotion on a few simultaneous locations around the stem in cadaveric experiments. This paper presents an extended experimental setup to measure simultaneously local micromotion, subsidence and gap on hundreds of points at the bone-stem interface. This technique we applied to anatomical and straight stems in three pairs of cadaveric femurs. Measurements were in agreement with typically reported values. Conversely to other methods, which measure micromotion between implant and bone anchoring points of the measuring device, our method provides local micromotion between stem surface and adjacent bone surface. The observed variation of micromotion at the peri-implant surface confirms the importance of this simultaneous measure on a lot of points around the implant.

摘要

骨水泥型股骨假体的初始稳定性对于全髋关节置换术的长期成功至关重要。这在动物和临床研究中都有报道。到目前为止,稳定性是通过在尸体实验中测量几个同时位于柄周围的位置的相对微动来评估的。本文提出了一种扩展的实验装置,可以在数百个骨-柄界面点上同时测量局部微动、下沉和间隙。我们将该技术应用于三对尸体股骨的解剖型和直柄。测量结果与通常报道的值一致。与其他方法不同,这些方法测量的是植入物和测量装置的骨锚固点之间的微动,我们的方法提供了柄表面和相邻骨表面之间的局部微动。在植入物周围表面观察到的微动变化证实了在许多点上同时测量的重要性。

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