Efficiency Analysis of Herringbone Star Gear Train Transmission with Different Load-Sharing Conditions
Abstract
:1. Introduction
2. Significance and Methods
3. Gear Train Efficiency and Meshing Force Model Analysis
3.1. Power Flow and Efficiency Calculation of Star Gear Train
3.2. The Meshing Force Analysis of the Five Star Gears
4. The Effect of Error on the Meshing Force in Star Gear Train
4.1. Ideal Relative Displacement on Meshing Line
4.2. Relative Displacement of Meshing Line Caused by Error
5. Case Analysis of Load-Sharing Performance
5.1. Case Analysis of Load-Sharing Performance on Efficiency
5.2. Influence of Load-Sharing Performance on Vibration of Gearbox
6. Conclusions
- (1)
- The total efficiency of the star gear train can be regarded as a parallel unit composed of multiple shunt branches, which can be improved by improving the efficiency of the shunt branch and adjusting the load coefficient of the branch.
- (2)
- The adjustment of the load coefficient affecting gear train efficiency can be realized by adjusting the center distance and center distance azimuth between the sun gear and the inner gear ring. Regardless of the change in the load coefficient between the shunt branches, the sum of the meshing forces of the five meshing pairs in the inner or outer meshing group is fixed. Ideally, the five meshing forces form a regular pentagon.
- (3)
- The load-sharing coefficient of the gear train decreases with the increase in power. Without load-sharing measures, the load coefficient of the star gear train with five-way power splitting is about 1.16, which is slightly lower than the efficiency of theoretical load sharing.
- (4)
- The uneven distribution of five shunt loads not only reduces the efficiency of the gear train, but also increases the vibration of the gearbox. The greater the load-sharing coefficient, the lower the efficiency and the larger the vibration.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters | Sun Gear | Star Gear | Annular Gear |
---|---|---|---|
Tooth number | 43 | 42 | 127 |
Tooth width (mm) | 60 × 2 | 59 × 2 | 57 × 2 |
Rotation speed (r/min) | 7463 | −7640.69 | −2526.84 |
Power (KW) | 20,000 | ||
Normal module (mm) | 3.5 | ||
Normal pressure angle (°) | 22.5 | ||
Spiral angle (°) | 26.969 |
Standard Installation | Installation Error with the Sun Gear | Installation Error with the Inner Gear | ||||
---|---|---|---|---|---|---|
load coefficient | Internal | External | Internal | External | Internal | External |
1.164307 | 1.164307 | 1.231918 | 1.231930 | 1.232545 | 1.232509 |
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Li, D.; Wang, S.; Li, D.; Yang, Y. Efficiency Analysis of Herringbone Star Gear Train Transmission with Different Load-Sharing Conditions. Appl. Sci. 2022, 12, 5970. https://doi.org/10.3390/app12125970
Li D, Wang S, Li D, Yang Y. Efficiency Analysis of Herringbone Star Gear Train Transmission with Different Load-Sharing Conditions. Applied Sciences. 2022; 12(12):5970. https://doi.org/10.3390/app12125970
Chicago/Turabian StyleLi, Dong, Shuyan Wang, Dongliang Li, and Yong Yang. 2022. "Efficiency Analysis of Herringbone Star Gear Train Transmission with Different Load-Sharing Conditions" Applied Sciences 12, no. 12: 5970. https://doi.org/10.3390/app12125970
APA StyleLi, D., Wang, S., Li, D., & Yang, Y. (2022). Efficiency Analysis of Herringbone Star Gear Train Transmission with Different Load-Sharing Conditions. Applied Sciences, 12(12), 5970. https://doi.org/10.3390/app12125970