Hydrodynamic lubrication of textured surfaces: A review of modeling techniques and key findings

Гидродинамическая смазка текстурированных поверхностей: обзор методов моделирования и основных результатов
Daniel Gropper, Ling Wang, Terry J. Harvey
2015-10-25

cavitationhydrodynamic lubricationload carrying capacitynumerical modelingsurface texturing
Understanding the influence of surface properties (roughness, grooves, discrete textures/dimples) on the performance of hydrodynamically lubricated contacts has been the aim of numerous studies. A variety of different numerical models have been employed by many researchers in order to find optimal texturing parameters (shape, size, distribution) for best performance enhancement in terms of load carrying capacity, film thickness, friction and wear. However, the large number of different modeling techniques and complexity in the patterns make finding the optimum texture a challenging task and have led to contrary conclusions. This article outlines the research effort on surface texturing worldwide, reviews the key findings and, in particular, provides a comparative summary of different modeling techniques for fluid flow, cavitation and micro-hydrodynamic effects.
1
Numerical models are widely used to optimize texture shape, size, and distribution for improving load capacity, film thickness, friction, and wear.
2
Surface roughness, grooves, and discrete textures such as dimples can substantially influence hydrodynamically lubricated contact performance.
3
The diversity of modeling techniques and complexity of surface patterns make identifying optimal textures difficult and produce contradictory research conclusions.
4
The paper synthesizes worldwide research findings on surface texturing and highlights challenges in determining universally optimal texturing parameters.
5
The review comparatively summarizes modeling approaches for fluid flow, cavitation, and micro-hydrodynamic effects in textured lubricated surfaces.

Textured surfaces in hydrodynamically lubricated contacts

The effects of surface texture properties and modeling techniques on hydrodynamic lubrication performance, including load-carrying capacity, film thickness, friction, wear, fluid flow, cavitation, and micro-hydrodynamic effects

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2015-10-25
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Daniel Gropper
Ling Wang
Terry J. Harvey
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