首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology >A study of the effect of model geometry and lubricant rheology upon the elastohydrodynamic lubrication performance of metal-on-metal hip joints
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A study of the effect of model geometry and lubricant rheology upon the elastohydrodynamic lubrication performance of metal-on-metal hip joints

机译:模型几何形状和润滑剂流变学对金属对金属髋关节的弹性流体动力润滑性能的影响的研究

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Lubrication modelling is of great importance in the design of artificial hip joints, especially for the demand of long life expectancy of those joints employing a metal-on-metal bearing. Through lubrication analysis, the dimensions of the head/cup and the clearance between them can be reasonably determined, and thus, if fluid film lubrication can be generated in artificial hip joint replacements, the wear and related failure can be reduced. In the majority of published numerical studies of the lubrication of hip joints, the synovial fluid for the natural joint and bovine serum used for in vitro simulator testing of joint replacements have always been treated as isoviscous, incompressible Newtonian fluids because the viscosity of these lubricants is almost unchanged at high shear rate. However, all these biological lubricants generally exhibit non-Newtonian characteristics of shear thinning, particularly under relatively low shear rates, and display a second Newtonian plateau at high shear rates. In this paper, model geometry is investigated first to show that the ball-on-plane model is a reasonable approximation to a typical metal-on-metal hip joint bearing considered. Then, in order to accurately predict the film thickness and pressure, the Reynolds equation considering the shear thinning effect of biological lubricants is derived, based on the Rabinowitsch model and following Greenwood's approach. The non-Newtonian effect was considered through two effective flow factors in the sliding and leakage directions, respectively. Numerical simulations were conducted on the basis of an equivalent ball-on-plane model with an effective radius determined from the head radius and the radial clearance, showing the influence of the shear thinning effect. The general lubrication model based on the unified Reynolds equations model was solved for the film thickness and pressure distribution, and the FFT-based approach was utilized to speed up the time-consuming calculation of elastic deformation in a fully numerical lubrication analysis. The results showed that the predicted film thickness when considering the shear thinning effect was slightly larger than that from the isoviscous model. It was found, however, that if the viscosity of the lubricant is adopted as the asymptotic value at high shear rate, the isoviscous Newtonian model can also give accurate predictions of film thickness. This is due to the relatively high shear rate in the contact zone.
机译:润滑建模在人工髋关节的设计中非常重要,特别是对于使用金属对金属轴承的那些关节的长寿命的需求。通过润滑分析,可以合理确定头/杯的尺寸以及它们之间的间隙,因此,如果可以在人工髋关节置换中产生液膜润滑,则可以减少磨损和相关的故障。在大多数已发表的髋关节润滑数值研究中,用于关节置换物的体外模拟器测试的天然关节和牛血清的滑液一直被视为等粘度,不可压缩的牛顿流体,因为这些润滑剂的粘度为在高剪切速率下几乎保持不变。然而,所有这些生物润滑剂通常表现出剪切稀化的非牛顿特性,特别是在相对较低的剪切速率下,并且在高剪切速率下表现出第二牛顿平稳期。在本文中,首先研究了模型的几何形状,以表明在平面上的球模型对于所考虑的典型金属对金属髋关节轴承是合理的近似值。然后,为了准确预测膜的厚度和压力,基于Rabinowitsch模型并遵循Greenwood的方法,推导了考虑生物润滑剂的剪切稀化作用的雷诺方程。通过分别在滑动方向和泄漏方向上的两个有效流动因子来考虑非牛顿效应。在等效球面上模型的基础上进行了数值模拟,其中有效半径由杆头半径和径向游隙确定,显示了剪切稀化效果的影响。解决了基于统一雷诺方​​程模型的通用润滑模型的膜厚和压力分布问题,并使用基于FFT的方法加快了全数值润滑分析中耗时的弹性变形计算。结果表明,考虑剪切稀化作用时的预测膜厚略大于等粘度模型的预测膜厚。但是,发现如果采用润滑剂的粘度作为高剪切速率下的渐近值,则等粘度牛顿模型也可以准确预测膜厚。这是由于在接触区域中较高的剪切速率。

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