Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity

A radial thrust hydrodynamic sliding bearing (RTHSB) with special shaped cavity had been designed. Taking the instantaneous temperature rise characteristics of RTHSB as an analysis object, considering the influence of inlet lubricating oil velocity and transmission shaft speed, a dynamic simulation...

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Main Authors: Jiafu Ruan, Xigui Wang, ShuE Ji, Yongmei Wang, Siyuan An
Format: Article
Language:English
Published: SAGE Publishing 2020-10-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814020965051
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spelling doaj-cac6abdaf30c439097ccaf0ba95585362020-11-25T03:54:04ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402020-10-011210.1177/1687814020965051Transient temperature field analysis of variable viscosity RTHSB with a special structural cavityJiafu Ruan0Xigui Wang1ShuE Ji2Yongmei Wang3Siyuan An4Engineering Technology School, Northeast Forestry University, Harbin, People’s Republic of ChinaEngineering Technology School, Northeast Forestry University, Harbin, People’s Republic of ChinaMotorcar Engineering School, Heilongjiang Institute of Technology, Harbin, People’s Republic of ChinaMechatronics School, Harbin University of Commerce, Harbin, People’s Republic of ChinaEngineering Technology School, Northeast Forestry University, Harbin, People’s Republic of ChinaA radial thrust hydrodynamic sliding bearing (RTHSB) with special shaped cavity had been designed. Taking the instantaneous temperature rise characteristics of RTHSB as an analysis object, considering the influence of inlet lubricating oil velocity and transmission shaft speed, a dynamic simulation method of variable viscosity temperature field is proposed, and the mathematical model of instantaneous temperature rise of time-varying oil film is constructed. The correlation equation between instantaneous temperature rise and oil film variable viscosity is analyzed, the lubricating performance of a special-shaped cavity with variable thickness of the oil film considering real-time full operating conditions is revealed, and the alternating transient laws of oil film thickness with variable viscosity and its instantaneous temperature rise for no-load, heavy-load, and different rotating speeds are studied. It is obtained that the higher temperature area of profiled shaped cavity on reverse flow side extends to oil seal side with increase of rotating speed. The dynamic simulation of variable viscosity of RTHSB with different film thickness is simulated by using FLUENT software and the trend of transient film temperature field distribution of in special-shaped cavity is evaluated. The rationality of the mechanism analysis and numerical simulation results in this paper has been verified.https://doi.org/10.1177/1687814020965051
collection DOAJ
language English
format Article
sources DOAJ
author Jiafu Ruan
Xigui Wang
ShuE Ji
Yongmei Wang
Siyuan An
spellingShingle Jiafu Ruan
Xigui Wang
ShuE Ji
Yongmei Wang
Siyuan An
Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
Advances in Mechanical Engineering
author_facet Jiafu Ruan
Xigui Wang
ShuE Ji
Yongmei Wang
Siyuan An
author_sort Jiafu Ruan
title Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
title_short Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
title_full Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
title_fullStr Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
title_full_unstemmed Transient temperature field analysis of variable viscosity RTHSB with a special structural cavity
title_sort transient temperature field analysis of variable viscosity rthsb with a special structural cavity
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2020-10-01
description A radial thrust hydrodynamic sliding bearing (RTHSB) with special shaped cavity had been designed. Taking the instantaneous temperature rise characteristics of RTHSB as an analysis object, considering the influence of inlet lubricating oil velocity and transmission shaft speed, a dynamic simulation method of variable viscosity temperature field is proposed, and the mathematical model of instantaneous temperature rise of time-varying oil film is constructed. The correlation equation between instantaneous temperature rise and oil film variable viscosity is analyzed, the lubricating performance of a special-shaped cavity with variable thickness of the oil film considering real-time full operating conditions is revealed, and the alternating transient laws of oil film thickness with variable viscosity and its instantaneous temperature rise for no-load, heavy-load, and different rotating speeds are studied. It is obtained that the higher temperature area of profiled shaped cavity on reverse flow side extends to oil seal side with increase of rotating speed. The dynamic simulation of variable viscosity of RTHSB with different film thickness is simulated by using FLUENT software and the trend of transient film temperature field distribution of in special-shaped cavity is evaluated. The rationality of the mechanism analysis and numerical simulation results in this paper has been verified.
url https://doi.org/10.1177/1687814020965051
work_keys_str_mv AT jiafuruan transienttemperaturefieldanalysisofvariableviscosityrthsbwithaspecialstructuralcavity
AT xiguiwang transienttemperaturefieldanalysisofvariableviscosityrthsbwithaspecialstructuralcavity
AT shueji transienttemperaturefieldanalysisofvariableviscosityrthsbwithaspecialstructuralcavity
AT yongmeiwang transienttemperaturefieldanalysisofvariableviscosityrthsbwithaspecialstructuralcavity
AT siyuanan transienttemperaturefieldanalysisofvariableviscosityrthsbwithaspecialstructuralcavity
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