首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Use of the Inverse method to cheek the stress predictions in rough elastohydrodynamic lubrication contacts lubricated with a non-Newtonian fluid for a range of asperity geometries
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Use of the Inverse method to cheek the stress predictions in rough elastohydrodynamic lubrication contacts lubricated with a non-Newtonian fluid for a range of asperity geometries

机译:使用逆方法检查在一系列粗糙几何形状下用非牛顿流体润滑的弹性流体动力润滑粗接触中的应力预测

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摘要

The inverse method enables a check to be made on the pressures and stresses calculated in rough elastohydrodynamic lubrication (EHL) contacts. Essentially, a rough, soft surface is run against a smooth, hard counterface in a twin disc machine for a limited time. This tends to deform the asperities on the soft disc and, at the end of the run, the profile is measured and used as input to an EHL solver to determine the hydrodynamic pressures. From these the stresses are calculated. If the material has deformed and deformation has ceased, the maximum stress should be equal to the yield strength of the soft disc. This comparison provides a quantitative check on the accuracy of the EHL analysis and on the assumptions made about the fluid rheology. Allowance has, of course, to be made for the build-up of residual stress in the disc material. The method is applied here to surfaces in which defects with a range of sizes have been manufactured. A non-Newtonian fluid with reasonably well-established characteristics was used under conditions of moderate slip. Good agreement is found between the predicted stresses and the material strength for all defect geometries, suggesting that the fluid properties are sufficiently well defined for accurate predictions to be made of the pressures and stresses in EHL conjunctions.
机译:反向方法可以检查在弹性流体动力润滑(EHL)粗接触中计算出的压力和应力。本质上,粗糙,柔软的表面在双碟机中在光滑,坚硬的对立面上运行了有限的时间。这易于使软盘上的凹凸变形,并且在运行结束时,将测量轮廓并将其用作EHL求解器的输入,以确定流体压力。从这些应力计算得出。如果材料变形且变形已停止,则最大应力应等于软盘的屈服强度。这种比较为EHL分析的准确性和有关流体流变学的假设提供了定量检查。当然,必须留有余地以在盘片材料中积累残余应力。该方法在此被应用于已经制造出具有一定尺寸范围的缺陷的表面。在中等滑移条件下使用具有合理建立的特性的非牛顿流体。在所有缺陷几何形状的预测应力和材料强度之间都发现了很好的一致性,这表明流体特性定义得足够好,可以对EHL接头中的压力和应力进行准确的预测。

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