Leuridan Steven, Goossens Quentin, Roosen Jorg, Pastrav Leonard, Denis Kathleen, Mulier Michiel, Desmet Wim, Vander Sloten Jos
Department of Mechanical Engineering, Biomechanics Division. KU Leuven, Celestijnenlaan 300c, Box 2419, 3001 Leuven, Belgium.
Department of Mechanical Engineering, Smart Instrumentation, KU Leuven, Andreas Vesaliusstraat 13, 3000 Leuven, Belgium.
Clin Biomech (Bristol). 2017 Feb;42:70-78. doi: 10.1016/j.clinbiomech.2017.01.009. Epub 2017 Jan 16.
Accurate pre-clinical evaluation of the initial stability of new cementless hip stems using in vitro micromotion measurements is an important step in the design process to assess the new stem's potential. Several measuring systems, linear variable displacement transducer-based and other, require assuming bone or implant to be rigid to obtain micromotion values or to calculate derived quantities such as relative implant tilting.
An alternative linear variable displacement transducer-based measuring system not requiring a rigid body assumption was developed in this study. The system combined advantages of local unidirectional and frame-and-bracket micromotion measuring concepts. The influence and possible errors that would be made by adopting a rigid body assumption were quantified. Furthermore, as the system allowed emulating local unidirectional and frame-and-bracket systems, the influence of adopting rigid body assumptions were also analyzed for both concepts. Synthetic and embalmed bone models were tested in combination with primary and revision implants. Single-legged stance phase loading was applied to the implant - bone constructs.
Adopting a rigid body assumption resulted in an overestimation of mediolateral micromotion of up to 49.7μm at more distal measuring locations. Maximal average relative rotational motion was overestimated by 0.12° around the anteroposterior axis. Frontal and sagittal tilting calculations based on a unidirectional measuring concept underestimated the true tilting by an order of magnitude.
Non-rigid behavior is a factor that should not be dismissed in micromotion stability evaluations of primary and revision femoral implants.
使用体外微动测量对新型非骨水泥型髋关节柄的初始稳定性进行准确的临床前评估是设计过程中评估新型柄潜力的重要一步。几种测量系统,基于线性可变位移传感器的和其他的,需要假设骨骼或植入物是刚性的,以获得微动值或计算诸如相对植入物倾斜等派生量。
本研究开发了一种基于线性可变位移传感器的替代测量系统,该系统不需要刚体假设。该系统结合了局部单向和框架-支架微动测量概念的优点。对采用刚体假设所产生的影响和可能的误差进行了量化。此外,由于该系统允许模拟局部单向和框架-支架系统,还对这两种概念采用刚体假设的影响进行了分析。将合成骨模型和防腐骨模型与初次植入物和翻修植入物结合进行测试。对植入物-骨结构施加单腿站立阶段负荷。
采用刚体假设导致在更远端的测量位置中外侧微动高估高达49.7μm。围绕前后轴的最大平均相对旋转运动高估了0.12°。基于单向测量概念的额状面和矢状面倾斜计算将真实倾斜低估了一个数量级。
在初次和翻修股骨植入物的微动稳定性评估中,非刚性行为是一个不可忽视的因素。