Fatigue Life Analysis of Main Reducer Gears for Battery Electric Bus Considering Regenerative Braking
Abstract
:1. Introduction
2. Finite Element Modeling and Static Analysis
2.1. Establishment of Gear Solid Model
2.2. Finite Element Modeling
2.3. Statics Results and Analysis
3. Fatigue Life Analysis Based on Load Spectrum
3.1. Obtaining Fatigue Load Spectrum
3.2. Calculation and Analysis of Fatigue Life
4. Conclusions
- (1)
- Based on the UDDS urban cycle condition, the torque load spectrums of electromagnetic braking and friction braking are calculated and converted into bending stress and contact stress spectrums.
- (2)
- Considering the influence of electromagnetic braking, the tooth root bending fatigue lives of the pinion convex and concave surface are 78.5% and 78.9%, respectively, of those under the traditional friction braking, and the contact fatigue of the concave surface of the pinion is 78.2%.
- (3)
- The braking energy recovery system of the BEUB has a significant influence on the fatigue life of the main reducer gears. The main reason is that the introduction of reverse braking torque changes the gear working condition, thus leading to the main reducer gear meshing surface changing frequently during the BEUB operation, which reduces the main reducer gears’ service life sharply. Therefore, more attention should be paid to the meshing performance of the nonworking faces when designing and manufacturing the BEUB main reducer gears. At the same time, the change in meshing would also have an impact, which should be taken into account in the design of the main reducer gears, so as to improve the comprehensive performance of the gear more comprehensively.
- (4)
- The proposed method is more consistent with the actual working conditions of BEUB and is also applicable to the gear transmission of other fuel vehicles fitted with retarders for braking, which is the same as that of the BEUB with the introduction of the regenerative braking system, so the method proposed in this article is equally applicable to the calculation of the fatigue life of the main reducer gears of a vehicle fitted with retarders.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Gear Parameter | Value |
---|---|
tooth numbers | 16/27 |
Module (mm) | 4.5 |
tooth width (mm) | 17 |
pressure angle (°) | 20° |
shaft angle (°) | 90° |
mean spiral angle (°) | 35° |
hand of spiral | LH/RH |
pitch angle (°) | 30.65°/59.35° |
Definition | Value |
---|---|
maximum total mass (kg) | 14,000 |
frontal area (m2) | 8 |
coefficient of rolling resistance | 0.016 |
coefficient of air resistance | 0.7 |
tire size (m) | 0.555 |
full speed (km/h) | 100 |
grad-ability limit (%) | 25 |
mechanical efficiency of power transmission (%) | 90 |
Rated Power (kW) | Peak Power (kW) | Peak Torque (N·m) | Rated Speed (rpm) | Peak Speed (rpm) |
---|---|---|---|---|
75 | 100 | 280 | 2600 | 7500 |
Braking Method | Stress Type | Cycle Index | |
---|---|---|---|
electromagnetic braking | bending stress | concave | 4.926 × 106 |
convex | 3.618 × 109 | ||
contact stress | 4.558 × 104 | ||
friction braking | bending stress | concave | 6.236 × 106 |
convex | 4.609 × 109 | ||
contact stress | 5.825 × 104 |
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Du, J.; Wu, X.; Mao, J. Fatigue Life Analysis of Main Reducer Gears for Battery Electric Bus Considering Regenerative Braking. Appl. Sci. 2022, 12, 7205. https://doi.org/10.3390/app12147205
Du J, Wu X, Mao J. Fatigue Life Analysis of Main Reducer Gears for Battery Electric Bus Considering Regenerative Braking. Applied Sciences. 2022; 12(14):7205. https://doi.org/10.3390/app12147205
Chicago/Turabian StyleDu, Jinfu, Xingrong Wu, and Jin Mao. 2022. "Fatigue Life Analysis of Main Reducer Gears for Battery Electric Bus Considering Regenerative Braking" Applied Sciences 12, no. 14: 7205. https://doi.org/10.3390/app12147205
APA StyleDu, J., Wu, X., & Mao, J. (2022). Fatigue Life Analysis of Main Reducer Gears for Battery Electric Bus Considering Regenerative Braking. Applied Sciences, 12(14), 7205. https://doi.org/10.3390/app12147205