Analysis of Vibration Characteristics of Angular Contact Ball Bearings in Aviation Engines Under Changing Conditions
Abstract
1. Introduction
2. Simulation Model Construction
3. Testing Equipment and Testing Systems
4. Analysis and Discussion of Results
4.1. Vibration Acceleration Level
4.2. Deviation Ratio of the Vortex Radius of the Center of Gravity of the Cage
4.3. Vibration Characteristics of Bearings Under Changing Conditions
4.3.1. Effect of Acceleration Time on Vibration Characteristics
4.3.2. Dynamic Characteristic Analysis of Bearings Under Variable Load Conditions
4.4. Analysis of the Correlation Between the Center-of-Gravity Trajectory of the Cage and Bearing Vibration
5. Simulation and Experimental Data Verification
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Test Subject | Angular Contact Ball Bearing |
---|---|
Number of tests | 4 sets |
Bearing inner diameter | Φ20–Φ60 mm |
Maximum radial load | 4 kN (closed-loop control) |
Maximum axial load | 2 kN (closed-loop control) |
Test bearing speed | 2000–32,000 r/min |
High-temperature lubricant heating | Room temperature to 180 °C (electric heating) |
Test parameters | Bearing vibration, temperature, load, etc. |
Lubrication method | Spray lubrication |
Operating Conditions | Axial Force Fa/N | Radial Force Fr/N | Load Coupling Characteristics | Simulated Engineering Background |
---|---|---|---|---|
1 | 50 → 500 (Stepwise increase) | Constant 300 | Axial force-dominant type | Thrust changes during engine acceleration and deceleration |
2 | Constant 300 | 100 → 1000 (Stepwise increase) | Radial force-dominant type | Centrifugal force fluctuations during maneuvering flight |
3 | 200 → 800 (Stepwise increase) | 200 → 800 (Stepwise increase) | Axial–radial coupled type | Composite dynamic load (dive/climb) |
4 | Constant 1000 | Constant 1000 | Axial–radial equal-amplitude synchronous type | High-load conditions during stable engine operation |
Test Type | Experiment Number | Axial Load/N | Radial Load/N | Rotational Speed/rpm |
---|---|---|---|---|
Speed parameter series | 1–5 | 200 | 300 | 8000–12,000 |
Axial force parameter series | 6–10 | 50–250 | 300 | 10,000 |
Radial force parameter series | 11–15 | 200 | 300–700 | 10,000 |
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Dong, Y.; Yan, Z.; Sun, J.; Yu, W.; Zhang, H.; Zhou, W.; Jin, J. Analysis of Vibration Characteristics of Angular Contact Ball Bearings in Aviation Engines Under Changing Conditions. Aerospace 2025, 12, 623. https://doi.org/10.3390/aerospace12070623
Dong Y, Yan Z, Sun J, Yu W, Zhang H, Zhou W, Jin J. Analysis of Vibration Characteristics of Angular Contact Ball Bearings in Aviation Engines Under Changing Conditions. Aerospace. 2025; 12(7):623. https://doi.org/10.3390/aerospace12070623
Chicago/Turabian StyleDong, Yanfang, Zibo Yan, Jianyong Sun, Wei Yu, Hai Zhang, Wenbo Zhou, and Jihao Jin. 2025. "Analysis of Vibration Characteristics of Angular Contact Ball Bearings in Aviation Engines Under Changing Conditions" Aerospace 12, no. 7: 623. https://doi.org/10.3390/aerospace12070623
APA StyleDong, Y., Yan, Z., Sun, J., Yu, W., Zhang, H., Zhou, W., & Jin, J. (2025). Analysis of Vibration Characteristics of Angular Contact Ball Bearings in Aviation Engines Under Changing Conditions. Aerospace, 12(7), 623. https://doi.org/10.3390/aerospace12070623