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Slip flow and thermal characteristics in gas thrust bearings with rough surfaces

Cheng Xiong (School of Energy and Environment, Southeast University, Nanjing, China)
Bo Xu (Southeast University, Nanjing, China)
Zhenqian Chen (School of Energy and Environment, Southeast University, Nanjing, China)

Industrial Lubrication and Tribology

ISSN: 0036-8792

Article publication date: 17 April 2024

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Abstract

Purpose

This study aims to investigate the rarefaction effects on flow and thermal performances of an equivalent sand-grain roughness model for aerodynamic thrust bearing.

Design/methodology/approach

In this study, a model of gas lubrication thrust bearing was established by modifying the wall roughness and considering rarefaction effect. The flow and lubrication characteristics of gas film were discussed based on the equivalent sand roughness model and rarefaction effect.

Findings

The boundary slip and the surface roughness effect lead to a decrease in gas film pressure and temperature, with a maximum decrease of 39.2% and 8.4%, respectively. The vortex effect present in the gas film is closely linked to the gas film’s pressure. Slip flow decreases the vortex effect, and an increase in roughness results in the development of slip flow. The increase of roughness leads to a decrease for the static and thermal characteristics.

Originality/value

This work uses the rarefaction effect and the equivalent sand roughness model to investigate the lubrication characteristics of gas thrust bearing. The results help to guide the selection of the surface roughness of rotor and bearing, so as to fully control the rarefaction effect and make use of it.

Keywords

Acknowledgements

This study was financially supported by the National Natural Science Foundation of China (grant no. 52006031).

Citation

Xiong, C., Xu, B. and Chen, Z. (2024), "Slip flow and thermal characteristics in gas thrust bearings with rough surfaces", Industrial Lubrication and Tribology, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/ILT-10-2023-0318

Publisher

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Emerald Publishing Limited

Copyright © 2024, Emerald Publishing Limited

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