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Three-Dimensional Plasto-Elastohydrodynamic Lubrication (PEHL) for Surfaces with Irregularities

机译:具有不规则性的表面的三维等离子弹性流体动力润滑(PEHL)

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Elastohydrodynamic lubrication (EHL) is one of the most common types of lubrication, which widely exists in many machine elements such as gears, rolling bearings, cams and followers, metal rolling tools, and continuous variable transmissions. These components often transmit substantial power under heavy loading conditions that may possibly induce plastic deformation of contacting surfaces. Moreover, the roughness of machined surfaces is usually of the same order of magnitude as, or greater than, the average EHL film thickness. Consequently, most components operate in mixed lubrication with considerable asperity contacts, which may result in localized pressure peaks much higher than the Hertzian pressure, causing subsurface stress concentrations possibly exceeding the material yield limit. Plastic deformation, therefore, often takes place, which not only permanently changes the surface profiles and contact geometry, but alters material properties through work-hardening as well. Available mixed EHL models, however, do not consider plastic deformation, often yielding unrealistically high pressure spikes and subsurface stresses around asperity contact locations. Recently, a three-dimensional (3D) plasto-elastohydrodynamic lubrication (PEHL) model has been developed for investigating the effects of plastic deformation and material work-hardening on the EHL characteristics and subsurface stress/strain fields. The present paper is a continuation of the previous work done by Ren et al. (2010, "PEHL in point contacts," ASME J. Tribol., 132(3), pp. 031501) that focused on model development and validation, as well as investigation of fundamental PEHL mechanisms in smooth surface contacts. This part of the study is mainly on the PEHL behavior involving simple surface irregularities, such as a single asperity or dent, which can be considered as basic elements of more complicated surface roughness. It is found that considerable plastic deformation may occur due to the pressure peaks caused by the surface irregularity, even though sometimes external loading is not heavy and the irregularity is concave. The plastic deformation may significantly affect contact and lubrication characteristics, resulting in considerable reductions in peak pressure and maximum subsurface stresses.
机译:弹性流体动力润滑(EHL)是最常见的润滑类型之一,广泛存在于许多机械元件中,例如齿轮,滚动轴承,凸轮和从动件,金属滚动工具以及无级变速器。这些组件通常在重负载条件下传输大量动力,这可能会引起接触表面的塑性变形。此外,机加工表面的粗糙度通常与平均EHL膜厚度相同或大于其数量级。因此,大多数部件在具有大量粗糙接触的混合润滑下运行,这可能导致局部压力峰值远高于赫兹压力,从而导致地下应力集中可能超过材料屈服极限。因此,经常发生塑性变形,这不仅会永久改变表面轮廓和接触几何形状,而且还会通过加工硬化来改变材料性能。但是,可用的混合EHL模型没有考虑塑性变形,通常会在不规则接触位置周围产生不切实际的高压尖峰和地下应力。最近,已开发了一种三维(3D)塑性-弹性流体动力润滑(PEHL)模型,用于研究塑性变形和材料加工硬化对EHL特性和地下应力/应变场的影响。本文是Ren等人先前所做工作的延续。 (2010年,“ PEHL in point contact”,ASME J. Tribol。,132(3),第031501页)着重于模型开发和验证,以及对光滑表面接触中基本PEHL机制的研究。研究的这一部分主要涉及PEHL行为,该行为涉及简单的表面不规则性,例如单个粗糙或凹痕,可以将其视为更复杂的表面粗糙度的基本要素。已经发现,由于表面不规则性引起的压力峰值可能会产生相当大的塑性变形,即使有时外部载荷不重并且不规则性是凹的。塑性变形可能会显着影响接触和润滑特性,从而导致峰值压力和最大地下应力显着降低。

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