Analysis of Dynamic Characteristics of Small-Scale and Low-Stiffness Ring Squeeze Film Damper-Rotor System
Abstract
:1. Introduction
2. Theoretical Method and Physical Model
2.1. Solution of Oil Film Reynold Equation
2.1.1. Reynolds Equation
2.1.2. Equation of Motion
2.1.3. Solving Method
2.2. Numerical Results
2.2.1. Oil Film Pressure Distributions
2.2.2. Oil Film Bearing Capacity and Deflection Angle Calculation
2.3. Process of Modeling
3. The Numerical Simulation of the Floating Ring Rotor System
3.1. Analysis of Oil Film Pressure Distribution and Fluid Load
3.2. Analysis of Floating Ring Fluid Torque and Rotation Speed
3.3. Analysis of Rotor and Floating Ring Trajectory
3.4. Analysis of Oil Film Clearance and Oil Film Flow
4. Conclusions and Future Work
- (1)
- The inner and outer oil film pressure distribution of the floating ring was investigated: the maximum oil film pressure keeps increasing with the increase in eccentricity, and it increases linearly with small eccentricity and increases non-linearly with large eccentricity exceeding 0.5. The bearing capacity of the oil film increases with the increase in eccentricity. The squeeze effect of the oil film is significantly enhanced, showing a strong nonlinear effect. The deflection angle decreases linearly with the increase in eccentricity. With the increase in the aspect ratio, the maximum oil film pressure increases linearly. The bearing capacity of the oil film also increases linearly with the increase in the aspect ratio.
- (2)
- In the balanced state, compared with the rotor speed, the floating ring rotates in the oil cavity at a very small speed. The results of the shaft trajectory and floating ring trajectory changes during the rotor start-up speed-up process show that the ring SFD has a significant effect on regulating rotor vibration, and the rotor shaft trajectory quickly converges to a balanced state and then whirls slightly in the ring. These results may encourage further work based on enhancements of the theoretical model in test.
- (3)
- The conclusions will be used to verify the theoretical results, and the influence of other parameters of SFD will be evaluated in the future. To comprehensively and deeply study the nonlinear dynamic behavior of the small-scale and low-stiffness ring SFD, the structural parameters of the ring SFD should be carefully selected to acquire a good vibration reduction performance.
Author Contributions
Funding
Conflicts of Interest
References
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Parameter Name | Numerical Value | Parameter Name | Numerical Value |
---|---|---|---|
Young’s modulus | 205 GPa | Poisson’s ratio | 0.3 |
Rotor material density | 7800 kg/m3 | Length of the rotor, L | 0.15 m |
Position of disk 1 | 0.1 L | Position of bearing 1 | 0.3 L |
Position of disk 2 | 0.9 L | Position of bearing 2 | 0.7 L |
Quality of disk 1 | 1.4 kg | Quality of disk 2 | 1.0 kg |
Lateral moment of inertia of disk 1 | 6.3 × 10−4 kg·m2 | Lateral moment of inertia of disk 2 | 4.5 × 10−4 kg·m2 |
Polar moment of inertia of disk 1 | 1.26 × 10−5 kg·m2 | Polar moment of inertia of disk 2 | 9 × 10−4 kg·m2 |
Parameter Name | Numerical Value | Parameter Name | Numerical Value |
---|---|---|---|
Quality of the floating ring | 0.02 kg | Outer gap | 0.08 mm |
Outer radius of the floating ring | 9 mm | Inner gap | 0.02 mm |
Inner radius of the floating ring | 6 mm | Lubricating oil viscosity | |
Length of the floating ring | 0.01 m | - | - |
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Shi, M.; Yang, Y.; Deng, W.; Wang, J.; Fu, C. Analysis of Dynamic Characteristics of Small-Scale and Low-Stiffness Ring Squeeze Film Damper-Rotor System. Appl. Sci. 2022, 12, 7167. https://doi.org/10.3390/app12147167
Shi M, Yang Y, Deng W, Wang J, Fu C. Analysis of Dynamic Characteristics of Small-Scale and Low-Stiffness Ring Squeeze Film Damper-Rotor System. Applied Sciences. 2022; 12(14):7167. https://doi.org/10.3390/app12147167
Chicago/Turabian StyleShi, Mingming, Yongfeng Yang, Wangqun Deng, Jianjun Wang, and Chao Fu. 2022. "Analysis of Dynamic Characteristics of Small-Scale and Low-Stiffness Ring Squeeze Film Damper-Rotor System" Applied Sciences 12, no. 14: 7167. https://doi.org/10.3390/app12147167
APA StyleShi, M., Yang, Y., Deng, W., Wang, J., & Fu, C. (2022). Analysis of Dynamic Characteristics of Small-Scale and Low-Stiffness Ring Squeeze Film Damper-Rotor System. Applied Sciences, 12(14), 7167. https://doi.org/10.3390/app12147167