边界滑移对气穴轴承流体动力润滑性能影响的理论研究

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL International Journal of Surface Science and Engineering Pub Date : 2017-06-26 DOI:10.1504/IJSURFSE.2017.084669
M. Muchammad, M. Tauviqirrahman, A. W. Pratomo, J. Jamari, D. Schipper
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引用次数: 3

摘要

轴承中的边界滑动越来越普遍,以提高流体动力学性能(压力和剪切应力)。然而,大多数先前发表的关于纹理轴承的工作忽略了空化效应,并使其结果值得怀疑。本文的主要目的是通过理论方法研究考虑空化的滑动轴承的水动力性能。空化在压力产生和剪切应力方面特别令人感兴趣。这里给出的一个主要结果是,在整个表面上的滑动可以延缓空化的存在,因此产生的压力和剪切应力可以是最佳的。本文介绍的工作提供了一个设计参考指南,设计师/工程师可以使用该指南来设计滑动轴承,以提高流体动力学性能。
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Theoretical investigation of boundary slip on the hydrodynamic lubrication performance in pocketed bearings including cavitation
Boundary slip in bearings is becoming more and more popular to improve the hydrodynamic performance (pressure and shear stress). However, most of previously published works regarding textured bearings neglected the cavitation effect and make their results questionable. The main aim of this paper is to investigate the hydrodynamic performance of slip pocketed bearings considering cavitation by a theoretical approach. Cavitation was of particular interest with respect to pressure generation and shear stress. One main result presented here was that slip over the whole surface could retard the presence of cavitation and therefore the generated pressure and shear stress could be optimal. The work presented here leads to a design reference guideline that could be used by the designer/engineer to design slip pocketed bearings for improving the hydrodynamic performance.
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来源期刊
CiteScore
1.60
自引率
25.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: IJSurfSE publishes refereed quality papers in the broad field of surface science and engineering including tribology, but with a special emphasis on the research and development in friction, wear, coatings and surface modification processes such as surface treatment, cladding, machining, polishing and grinding, across multiple scales from nanoscopic to macroscopic dimensions. High-integrity and high-performance surfaces of components have become a central research area in the professional community whose aim is to develop highly reliable ultra-precision devices.
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