Effects of Tooth Modification in the Involute Helical Gear Form-Grinding Process on Loaded Transmission Character with Consideration of Tooth Axial Inclination Error
Abstract
:1. Introduction
2. Tooth Modification Model Based on Tooth Axial Inclination Error
2.1. Axis Parallelism Error of Gear Pairs
2.2. Tooth Modification Model Based on Tooth Axial Inclination Error
3. Involute Helical Gear Form Grinding with Tooth Modification
3.1. Tooth Surface Equation of Involute helical Gear with Tooth Modification
3.2. Involute Helical Gear Form-Grinding Process with Tooth Modification
3.3. Calculation of Cross-Sectional Profile of Grinding Wheel
3.4. Tooth Surface Modified Error of Involute Helical Gear with Different Tooth Modification Parameters
4. Finite Element Simulation of Involute Helical Gearbox with Tooth Modification
4.1. Influence of Tooth Modification on Tooth Surface Contact Stress
4.2. Influence of Tooth Modification on Gearbox Transmission Error
5. Experimental Verification
5.1. Static Accuracy Measuring Experiment of Machine Tools
5.2. Grinding and Measuring Experiment of Involute Helical Gear with Different Tooth Modification Parameters
5.3. Gearbox Vibration Measuring Experiment
6. Conclusions
- (1)
- Compared with the existing method, the method proposed in this paper can effectively reduce “tooth profile distortion” and “tooth axial twist” of the involute helical gear form-grinding process, thus improving loaded transmission character. In particular, the tooth surface modified error data show that “tooth profile distortion” of modification II ( after optimization) is reduced significantly, where the tooth profile modification rate is about 98.6%; and the “tooth axial twist” of modification II ( after optimization) is reduced significantly, where the tooth axial modification rate is about 95.7%;
- (2)
- According to the grinding and measuring experiment, the Gleason measuring accuracy is level 4. Compared with modification II ( before optimization), the “tooth profile distortion” and “tooth axial twist” of modification II ( after optimization) are effectively reduced, and the offset of the “tooth profile distortion” and “tooth axial twist” are, respectively, lower by 31.6% and 31.7%. Moreover, the tooth modification of modification II ( after optimization) is significantly realized, and the tooth modification rates of the tooth profile and tooth axial are about 97.6% and 94.7%, respectively;
- (3)
- According to the gearbox vibration measuring experiment, loaded transmission character is improved significantly. Compared to the gearbox without modification, the reduction rate of the vector sum of the gearbox vibration amplitude of modification II ( before optimization) is 46.0%, and the reduction rate of the vector sum of the gearbox vibration amplitude of modification II ( after optimization) is 63.7%. Furthermore, there is an obvious eccentric load on the tooth surface of the gearbox without modification; there is almost no eccentric load on the tooth surface of the gearbox with modification II ( after optimization). Therefore, this paper can provide a theoretical and experimental basis for the research of high-performance gear-grinding technology of gear-grinding machines.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Name | Symbol | Unit | Value |
---|---|---|---|
Normal module | 2.4 | ||
Tooth modification right-hand gear | 39 | ||
Mating left-hand gear | 50 | ||
Normal pressure angle | 19.5 | ||
Spiral angle | 25 | ||
Tooth width | 22 | ||
Addendum modification coefficient | 0 | ||
Grinding wheel radius | 120 | ||
Addendum coefficient | 1 | ||
Bottom clearance coefficient | 0.25 | ||
Material | 20CrMnTi | ||
Tooth surface hardness | HRC | 59~63 | |
Elasticity modulus | 207 |
Transmission Torque /N·m | Grinding Wheel Mounting Angle/° | Modification | Tooth Profile Tip Relief and Root Relief/μm | Tooth Axial Fully Crowned Modification/μm |
---|---|---|---|---|
I | 14 | 14 | ||
65.3284 | II | 5.2 | 6.5 | |
I | 14 | 14 | ||
50 | 64.8947 | II | 5.2 | 6.5 |
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Yang, Y.; Wu, Y.; Li, Y.; Liu, X. Effects of Tooth Modification in the Involute Helical Gear Form-Grinding Process on Loaded Transmission Character with Consideration of Tooth Axial Inclination Error. Machines 2023, 11, 305. https://doi.org/10.3390/machines11020305
Yang Y, Wu Y, Li Y, Liu X. Effects of Tooth Modification in the Involute Helical Gear Form-Grinding Process on Loaded Transmission Character with Consideration of Tooth Axial Inclination Error. Machines. 2023; 11(2):305. https://doi.org/10.3390/machines11020305
Chicago/Turabian StyleYang, Yongming, Yunlong Wu, Yan Li, and Xinrong Liu. 2023. "Effects of Tooth Modification in the Involute Helical Gear Form-Grinding Process on Loaded Transmission Character with Consideration of Tooth Axial Inclination Error" Machines 11, no. 2: 305. https://doi.org/10.3390/machines11020305
APA StyleYang, Y., Wu, Y., Li, Y., & Liu, X. (2023). Effects of Tooth Modification in the Involute Helical Gear Form-Grinding Process on Loaded Transmission Character with Consideration of Tooth Axial Inclination Error. Machines, 11(2), 305. https://doi.org/10.3390/machines11020305