Numerical and Experimental Investigation of Oil-Guiding Splash Lubrication in Light Helicopter’s Reducers
Abstract
:1. Introduction
2. CFD Methodology
2.1. Governing Equation
2.2. CFD Modeling
2.2.1. Oil-Guiding Cylinder and Oil-Guiding Splash Lubrication System
2.2.2. Flow Monitoring Plane
2.3. CFD Grid Technology
3. Numerical Results
3.1. Rotational Speed
3.2. Flight Inclination
3.3. Oil Level
4. Experimental Validation
4.1. Test Rig
4.2. Experimental Results
4.2.1. Rotational Speed
4.2.2. Oil Level
5. Conclusions
- The increase in rotational speed makes the flow rate of baseline testing rise, and the amount of oil splashed to the oil-collecting pipe is greatly increased, resulting in a larger increase in oil volume. There is a critical speed between 400 r/min and 530 r/min, beyond which the oil can climb to the top of the oil-guiding cylinder in large quantities; if not, the continuous oil supply cannot be realized.
- The amount of oil passing through the target area increases with the oil level. The higher the oil level height, the more oil is splashed into the oil-collecting tube from the gear surface. From the oil supply at the top of the oil-guiding cylinder, the oil supply increases when the oil level rises, but the amount of oil is not significantly elevated. At this point, the amount of oil flowing through the oil-jet hole has reached saturation point. Balancing the resisting moment and the flow rate, the oil level height H = 55 mm is the best choice.
- The difference in flow rate caused by the pitch angle and the roll angle is mainly due to gravity and rotation direction. When the direction of oil throwing is inclined to the gravity direction, the splash of oil volume is higher. When the rotor shaft is rotating, the splash of oil volume is higher as the oil-jet hole moves from high to low than that of moving from low to high.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Monitoring Planes | x-Direction (mm) | y-Direction (mm) | z-Direction (mm) |
---|---|---|---|
1 | x = 70 | yL = −15, yH = 15 | zL = 105, zH = 135 |
2 | xL = −33, xH = 33 | yL = −33, yH = 33 | z = 113 |
3 | x = −70 | yL = −8, yH = 8 | zL = −38, zH = −22 |
Rotating Speed (r/min) | Oil Volume of Monitoring Plane 1 (mL) | Oil Volume of Monitoring Plane 2 (mL) | Oil Volume of Monitoring Plane 3 (mL) |
---|---|---|---|
400 | 0.043 | 0.11 | 24.40 |
530 | 0.82 | 19.66 | 28.24 |
660 | 1.04 | 28.97 | 33.10 |
Parameters | Total Oil Volume (mL) | Direction of Tilt |
---|---|---|
α = 15°, θ = 0° | 0.80041 | Spin-in side |
α = −15°, θ = 0° | 0.48555 | Spin-out side |
α = 0°, θ = 0° | 0.81169 | Level |
α = 0°, θ = 15° | 0.85675 | Spin-in side |
α = 0°, θ = −15° | 0.54695 | Spin-out side |
Oil Level (mm) | Oil Volume of Monitoring Plane 1 (mL) | Oil Volume of Monitoring Plane 2 (mL) | Oil Volume of Monitoring Plane 3 (mL) |
---|---|---|---|
50 | 0.23 | 13.12 | 27.68 |
55 | 0.81 | 19.66 | 28.24 |
60 | 0.71 | 22.91 | 29.19 |
Rotating Speed n (r/min) | RunningTime (min) | Experimental Oil Volume (mL) | Baseline Testing Oil Volume (mL) | Target Oil Volume (mL) | Numerical Oil Volume (mL) | Error |
---|---|---|---|---|---|---|
400 | 5 | 0.5 | 0.4 | 0.1 | 0.12 | 20.0% |
530 | 5 | 4.4 | 1.9 | 2.5 | 2.16 | 13.6% |
660 | 5 | 10.2 | 7.7 | 2.5 | 2.27 | 9.2% |
Oil Level H (mm) | Running Time (min) | Experimental Oil Volume (mL) | Baseline Testing Oil Volume (mL) | Target Oil Volume (mL) | Numerical Oil Volume (mL) | Error |
---|---|---|---|---|---|---|
45 | 5 | 0.7 | 0.6 | 0.1 | 0.09 | 10.0% |
55 | 5 | 4.4 | 1.9 | 2.5 | 2.16 | 13.6% |
65 | 5 | 17.3 | 14.2 | 3.1 | 3.49 | 12.6% |
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Yin, M.; Chen, X.; Dai, Y.; Yang, D.; Xu, L.; Zhu, X. Numerical and Experimental Investigation of Oil-Guiding Splash Lubrication in Light Helicopter’s Reducers. Aerospace 2021, 8, 345. https://doi.org/10.3390/aerospace8110345
Yin M, Chen X, Dai Y, Yang D, Xu L, Zhu X. Numerical and Experimental Investigation of Oil-Guiding Splash Lubrication in Light Helicopter’s Reducers. Aerospace. 2021; 8(11):345. https://doi.org/10.3390/aerospace8110345
Chicago/Turabian StyleYin, Mei, Xi Chen, Yu Dai, Duan Yang, Lanjin Xu, and Xiang Zhu. 2021. "Numerical and Experimental Investigation of Oil-Guiding Splash Lubrication in Light Helicopter’s Reducers" Aerospace 8, no. 11: 345. https://doi.org/10.3390/aerospace8110345
APA StyleYin, M., Chen, X., Dai, Y., Yang, D., Xu, L., & Zhu, X. (2021). Numerical and Experimental Investigation of Oil-Guiding Splash Lubrication in Light Helicopter’s Reducers. Aerospace, 8(11), 345. https://doi.org/10.3390/aerospace8110345