Calculation of the Maximum Temperature of Diester-Based Magnetic Fluid Layers in High-Speed Seals
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Published:2023-03-11
Issue:6
Volume:13
Page:1019
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ISSN:2079-4991
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Container-title:Nanomaterials
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language:en
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Short-container-title:Nanomaterials
Author:
Cheng Yanhong1, Su Zhe1, Zhou Jiayi1, Liu Zhifeng12, Li Decai3, Zhang Caixia1, Xu Jingjing1ORCID
Affiliation:
1. Institute of Advanced Manufacturing and Intelligent Technology, Beijing University of Technology, Beijing 100124, China 2. Key Laboratory of Advanced Manufacturing and Intelligent Technology for High-End CNC Equipment, Changchun 130015, China 3. State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China
Abstract
Magnetic fluids, as smart nanomaterials, have been successfully used in sealing applications and other fields. However, the temperature of magnetic fluids in the sealing gap is a key factor affecting sealing performances, limiting their application in high-speed sealing fields. Since obtaining a direct measurement of the magnetic fluid’s temperature is difficult, due to the small clearance, accurately calculating the maximum temperature of the magnetic fluid layer in high-speed seals is crucial. Herein, a mathematical model for calculating the maximum temperature of the magnetic fluid layer was established, by using a reasonable simplification of high-speed sealing conditions, and the calculation formula was modified by studying the rheological properties of the diester-based magnetic fluid. The results suggest that the calculation of the maximum temperature is influenced by viscous dissipation, and both are related to the rheological characteristics of magnetic fluids. When the influence of rheological properties is ignored, the calculation results are not accurate for higher-velocity seals, but the calculation model applies to lower-velocity seals. When the influence of rheological properties is considered, the calculation results obtained by the corrected formula are more accurate, and they are applicable to both lower- and higher-velocity seals. This work can help us more accurately and conveniently estimate the maximum temperature of magnetic fluids in high-speed seal applications, which is of theoretical and practical research significance for determining sealing performances and thermal designs.
Funder
National Natural Science Foundation of China Faculty of Materials and Manufacturing, BJUT
Subject
General Materials Science,General Chemical Engineering
Reference25 articles.
1. Chen, F., Liu, X.B., Li, Z.G., Yan, S.N., Fu, H., and Yan, Z.Q. (2021). Investigation of the Rheological Properties of Zn-Ferrite/Perfluoropolyether Oil-Based Ferrofluids. Nanomaterials, 11. 2. Optimization of Heat Transfer Properties on Ferrofluid Flow over a Stretching Sheet in The Presence of Static Magnetic Field;Bhandari;J. Therm. Anal. Calorim.,2021 3. Krasia-Christoforou, T., Socoliuc, V., Knudsen, K.D., Tombacz, E., Turcu, R., and Vekas, L. (2020). From Single-Core Nanoparticles in Ferrofluids to Multi-Core Magnetic Nanocomposites: Assembly Strategies, Structure, and Magnetic Behavior. Nanomaterials, 10. 4. Wang, G.H., Yang, X.L., and Zhang, R.B. (2019, January 10–12). Study on Axial Parameters of Stepped Ferrofluid Seals. Proceedings of the 5th International Conference on Mechanical Engineering and Automation Science (ICMEAS), China Univ Geosciences, Wuhan, China. 5. Experimental Validation and Numerical Simulation of Static Pressure in Multi-Stage Ferrofluid Seals;Zhang;IEEE Trans. Magn.,2019
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