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Plasto-Elastohydrodynamic Lubrication (PEHL) in Point Contacts

机译:点接触中的等离子体弹性流体动力润滑(PEHL)

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摘要

Elastohydrodynamic lubrication (EHL) is an important branch of the lubrication theory, describing lubrication mechanisms in nonconformal contacts widely found in many mechanical components such as various gears, rolling bearings, cams and followers, metal-rolling tools, traction drives, and continuous variable transmissions. These components often transmit substantial power under heavy loading conditions. Also, the roughness of machined surfaces is usually of the same order of magnitude as, or greater than, the estimated average EHL film thickness. Consequently, most components operate in mixed lubrication regime with significant asperity contacts. Due to very high pressure concentrated in small areas, resulted from either heavy external loading or severe asperity contacts, or often a combination of both, subsurface stresses may exceed the material yield limit, causing considerable plastic deformation, which may not only permanently change the surface profiles and contact geometry but also alter material properties through work hardening as well. In the present study, a three-dimensional plastoelastohydrodynamic lubrication (PEHL) model has been developed by taking into account plastic deformation and material work-hardening. The effects of surface/subsurface plastic deformation on lubricant film thickness, surface pressure distribution, and subsurface stress field have been investigated. This paper briefly describes the newly developed PEHL model and presents preliminary results and observed basic behavior of the PEHL in smooth-surface point contacts, in comparison with those from corresponding EHL solutions under the same conditions. The results indicate that plastic deformation may greatly affect contact and lubrication characteristics, resulting in significant reductions in lubricant film thickness, peak surface pressure and maximum subsurface stresses.
机译:弹性流体动力润滑(EHL)是润滑理论的重要分支,描述了非等形接触中的润滑机理,广泛发现于许多机械部件中,例如各种齿轮,滚动轴承,凸轮和从动件,金属轧制工具,牵引传动和无级变速器。这些组件通常在重负载条件下传输大量功率。而且,机加工表面的粗糙度通常与估计的平均EHL膜厚度相同或大于其数量级。因此,大多数部件在混合润滑状态下均具有明显的粗糙接触。由于极高的压力集中在小区域内,这是由于外部重负荷或严重的粗糙接触,或者往往是两者的结合所致,因此,表面下的应力可能会超过材料的屈服极限,从而导致相当大的塑性变形,这不仅会永久性地改变表面轮廓和接触几何形状,但也会通过加工硬化来改变材料属性。在本研究中,通过考虑塑性变形和材料加工硬化,建立了三维塑性弹性流体动力润滑(PEHL)模型。研究了表面/表面塑性变形对润滑膜厚度,表面压力分布和表面应力场的影响。本文简要介绍了新开发的PEHL模型,并与相同条件下相应的EHL解决方案的结果相比,提供了在光滑表面点接触中PEHL的初步结果和观察到的基本行为。结果表明,塑性变形可能会极大地影响接触和润滑特性,从而导致润滑膜厚度,峰值表面压力和最大地下应力显着减小。

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