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三维生理负荷与运动对金属对金属全髋关节置换术弹性流体动力润滑的影响。

Effect of 3D physiological loading and motion on elastohydrodynamic lubrication of metal-on-metal total hip replacements.

作者信息

Gao Leiming, Wang Fengcai, Yang Peiran, Jin Zhongmin

机构信息

Institute of Medical and Biological Engineering, University of Leeds, Leeds, UK.

出版信息

Med Eng Phys. 2009 Jul;31(6):720-9. doi: 10.1016/j.medengphy.2009.02.002. Epub 2009 Mar 9.

Abstract

An elastohydrodynamic lubrication (EHL) simulation of a metal-on-metal (MOM) total hip implant was presented, considering both steady state and transient physiological loading and motion gait cycle in all three directions. The governing equations were solved numerically by the multi-grid method and fast Fourier transform in spherical coordinates, and full numerical solutions were presented included the pressure and film thickness distribution. Despite small variations in the magnitude of 3D resultant load, the horizontal anterior-posterior (AP) and medial-lateral (ML) load components were found to translate the contact area substantially in the corresponding direction and consequently to result in significant squeeze-film actions. For a cup positioned anatomically at 45 degrees , the variation of the resultant load was shown unlikely to cause the edge contact. The contact area was found within the cup dimensions of 70-130 degrees and 90-150 degrees in the AP and ML direction respectively even under the largest translations. Under walking conditions, the horizontal load components had a significant impact on the lubrication film due to the squeeze-film effect. The time-dependent film thickness was increased by the horizontal translation and decreased during the reverse of this translation caused by the multi-direction of the AP load during walking. The minimum film thickness of 12-20 nm was found at 0.4s and around the location at (95, 125) degrees. During the whole walking cycle both the average and centre film thickness were found obviously increased to a range of 40-65 nm, compared with the range of 25-55 nm under one load (vertical) and one motion (flexion-extension) condition, which suggested the lubrication in the current MOM hip implant was improved under 3D physiological loading and motion. This study suggested the lubrication performance especially the film thickness distribution should vary greatly under different operating conditions and the time and location that potential wear may occur was very sensitive to specific loading and motion conditions. This may provide some explanation to the large variations in wear from hip simulators and clinical studies, and also stress the importance of using more realistic loading and motion conditions in the tribological study of MOM hip prostheses.

摘要

本文提出了一种金属对金属(MOM)全髋关节植入物的弹流润滑(EHL)模拟方法,该方法考虑了稳态和瞬态生理载荷以及三个方向上的运动步态周期。通过多网格法和球坐标中的快速傅里叶变换对控制方程进行数值求解,并给出了包括压力和膜厚分布在内的完整数值解。尽管三维合力的大小变化很小,但发现水平前后(AP)和内外侧(ML)载荷分量会使接触面积在相应方向上发生显著平移,从而导致显著的挤压膜作用。对于解剖位置为45度的髋臼杯,合力的变化不太可能导致边缘接触。即使在最大平移情况下,接触面积分别在AP方向70 - 130度和ML方向90 - 150度的髋臼杯尺寸范围内。在行走条件下,由于挤压膜效应,水平载荷分量对润滑膜有显著影响。水平平移会使随时间变化的膜厚增加,而在行走过程中由于AP载荷的多向性导致平移反向时膜厚会减小。在0.4秒时以及(95, 125)度左右的位置发现最小膜厚为12 - 20纳米。在整个行走周期中,平均膜厚和中心膜厚均明显增加至40 - 65纳米的范围,相比单载荷(垂直)和单运动(屈伸)条件下25 - 55纳米的范围,这表明当前MOM髋关节植入物在三维生理载荷和运动下的润滑得到了改善。本研究表明,润滑性能尤其是膜厚分布在不同运行条件下可能有很大差异,潜在磨损可能发生的时间和位置对特定的载荷和运动条件非常敏感。这可能为髋关节模拟器和临床研究中磨损的巨大差异提供一些解释,也强调了在MOM髋关节假体摩擦学研究中使用更符合实际的载荷和运动条件的重要性。

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