A new modified boundary slip model for thrust bearing performance under fluid–thermal–structure interaction regime
Industrial Lubrication and Tribology
ISSN: 0036-8792
Article publication date: 2 August 2022
Issue publication date: 13 October 2022
Abstract
Purpose
This study aims to investigate the thermohydrodynamic (THD) and thermoelastohydrodynamic (TEHD) performance of an air-lubricated thrust bearing under different slip conditions, especially the slip length effect.
Design/methodology/approach
In this study, a new modified boundary slip model was established to investigate thrust bearing performance. The THD and TEHD bearing characteristic distribution was analyzed with fluid–thermal–structure interaction approach. The effect of the slip length on the bearing performance was studied using various bearing structure parameters.
Findings
The increased slip length changed the classical feature distribution of the film pressure and temperature. The sacrifice of the bearing load capacity effectively compensated for the aerodynamic thermal effect and friction torque under the slip condition. The TEHD model has a lower film pressure and load capacity than the THD model. However, it also has lower film temperature, lower friction torque and smaller Knudsen number (Kn).
Originality/value
The bearing THD and TEHD performances of the modified boundary slip model were compared with those of a traditional no-slip bearing. The results help to guide the selection of the bearing surface materials and processing technology of rotor and foil, so as to fully control the degree of slip and make use of it.
Keywords
Acknowledgements
This study was financially supported by National Natural Science Foundation of China (Grant No. 52006031).
Citation
Xiong, C., Xu, B., Jiang, Y., Lu, X. and Chen, Z. (2022), "A new modified boundary slip model for thrust bearing performance under fluid–thermal–structure interaction regime", Industrial Lubrication and Tribology, Vol. 74 No. 9, pp. 1015-1027. https://doi.org/10.1108/ILT-04-2022-0129
Publisher
:Emerald Publishing Limited
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