Structural Design and Lubrication Properties under Different Eccentricity of Magnetic Fluid Bearings
Abstract
:1. Introduction
2. Analytical Model for Magnetic Fluid Lubricated Bearings
2.1. Radial Plain Bearing Oil Pressure Distribution
2.2. Structural Model of a Magneto–Hydrodynamic Lubricated Bearing Friction Pair
2.3. Design of the Magnetic Fluid Lubricated Bearing Mechanism
3. Results and Discussion
3.1. Magnetic Fluid Lubrication Viscosity Characteristics
- The volume force and inertial force of the magnetic fluid are negligible;
- The radius of the journal and bearing is much larger than the film thickness;
- No-slip phenomenon at the magnetic fluid lubrication interface;
- The lubrication film does not change along the radial pressure.
3.2. Flow Field Analysis of Magneto–Fluid Lubricated Bearings
3.3. Magnetic Field Analysis of Magnetic Fluid Lubricated Bearings
4. Conclusions
- (1)
- The viscosity of the magnetic fluid decreases exponentially with increasing temperature, increases linearly with increasing pressure, and increases with increasing field strength; the viscosity of the magnetic fluid rises first and then stabilizes, with a similar upward trend to the magnetization curve.
- (2)
- The oil film pressure distribution is separated by the minimum oil film thickness area into two approximately symmetrical high-pressure and low-pressure areas, with the bearing eccentricity increases, the pressure difference between high and low pressure gradually increases, and the high-pressure and low-pressure areas are gradually concentrated towards the minimum oil film thickness area, the oil film wedge effect is enhanced.
- (3)
- The oil film high temperature zone is mainly distributed in the middle of the axial region and around the minimum oil film thickness area; with the bearing eccentricity increases, the oil film high temperature zone temperature increases and concentrates around the middle of the axial region and the minimum oil film thickness area, the heat dissipation method is mainly heat conduction and convection heat dissipation.
- (4)
- The magnetic field of magnetic fluid bearing is distributed in the clearance between the shaft and the journal, and when the eccentricity of the bearing is increased, the magnetic induction intensity in the maximum oil film thickness area remains the same, while the magnetic induction intensity in the minimum oil film thickness area is the strongest. In addition, the magnetic fluid bearing has a certain sealing pressure resistance; high eccentricity of the magnetic fluid bearing sealing performance is better.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Shaft Diameter (D/mm) | Bore of the Shaft Shank (d/mm) | Shaft Shank Width (B/mm) | Eccentricity () |
---|---|---|---|
16 | 16.05 | 10 | 0.2, 0.4, 0.6, 0.8 |
Outer Diameter (D/mm) | Inner Diameter (d/mm) | Width (B/mm) | Orthopaedic Force (A/m) | Operating Temperature (°C) |
---|---|---|---|---|
57 | 41 | 16 | 87,000 | ≤100 |
Particle Volume Fraction () | Surfactant Thickness (c/nm) | Magnetic Particle Diameter (d/nm) | Base Carrier Fluid Viscosity (/Pa·s) |
---|---|---|---|
30% | 2 | 10 | 1.5 |
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Wang, A.; Pan, J.; Wu, H.; Ye, J. Structural Design and Lubrication Properties under Different Eccentricity of Magnetic Fluid Bearings. Appl. Sci. 2022, 12, 7051. https://doi.org/10.3390/app12147051
Wang A, Pan J, Wu H, Ye J. Structural Design and Lubrication Properties under Different Eccentricity of Magnetic Fluid Bearings. Applied Sciences. 2022; 12(14):7051. https://doi.org/10.3390/app12147051
Chicago/Turabian StyleWang, Ao, Jiabao Pan, Huaibiao Wu, and Jin Ye. 2022. "Structural Design and Lubrication Properties under Different Eccentricity of Magnetic Fluid Bearings" Applied Sciences 12, no. 14: 7051. https://doi.org/10.3390/app12147051
APA StyleWang, A., Pan, J., Wu, H., & Ye, J. (2022). Structural Design and Lubrication Properties under Different Eccentricity of Magnetic Fluid Bearings. Applied Sciences, 12(14), 7051. https://doi.org/10.3390/app12147051