Multi-Error Collaborative Tooth Surface Modification of High Reduction Ratio Hypoid Gears Considering Cutter and Machine Tool Errors
Abstract
1. Introduction
- (1)
- Develop a precise mathematical model of HRHGs, incorporating CGE and MSE to provide a theoretical basis for subsequent error analysis and optimization;
- (2)
- Systematically investigate the effects of CGE and MSE on TTE, TRE and RMS and identify key error sources using Sobol’ analysis;
- (3)
- Construct a multi-objective optimization model integrating CGE and MSE and propose a standard NSGA-II-based method to achieve coordinated enhancement of tooth surface accuracy.
2. Tooth Surface Modeling Method for Pinion of High Reduction Ratio Hypoid Gears
2.1. Theoretical Tooth Surface Modeling of High Reduction Ratio Hypoid Gears
2.2. Error Tooth Surface Modeling of High Reduction Ratio Hypoid Gears Considering CGE and MSE
2.3. Numerical Example
3. Global Sensitivity Analysis (GSA) of CGE and MSE on Tooth Surface Errors Based on Sobol’ Method
3.1. Global Sensitivity Analysis (GSA) Based on the Sobol’ Method
3.2. Global Sensitivity Analysis (GSA) of CGE and MSE on Tooth Surface RMS, TTE and TRE
4. Tooth Surface Correction Method for HRHGs Considering CGE and MSE Based on Standard NSGA-II Algorithm
4.1. Objective Function Settings
4.2. Algorithm Settings
4.3. Pareto Front Solutions
5. Results and Discussion
6. Conclusions
- (1)
- The proposed method simultaneously considers the combined effects of cutter tool geometry errors (CGE) and machine tool setting parameters errors (MSE) on TTE, TRE, and RMS. It effectively identifies key error sources and implements targeted optimization and compensation. Experimental results demonstrate that, after compensation, the tooth surface TTE, TRE, and RMS are significantly reduced, validating the effectiveness and robustness of this method in compensating gear manufacturing errors.
- (2)
- Based on Sobol’ global sensitivity analysis (GSA), this study identified four key parameters that most significantly affect TTE, TRE, and RMS: the ratio of roll , radial distance , cutting tool radius , and machine center to back . Notably, the higher-order interaction contribution between and has a particularly pronounced impact on tooth surface deviations, providing crucial insights for the formulation of optimization strategies.
- (3)
- After identifying the key parameters, the standard NSGA-II algorithm was used for multi-objective optimization to minimize TTE, TRE, and RMS. Multiple measurement results showed that the tooth surface error decreased significantly after correction. Multiple tooth surface measurement results showed that the tooth surface error decreased significantly after error correction. The minimum changes before and after correction are as follows: TTE on the concave side of the gear decreased from 35.8 to 8.80 μm; TRE decreased from 33.8 to 10.10 μm; RMS decreased from 10.73 to 2.87 μm; TTE on the convex side of the gear decreased from 30.8 to 6.70 μm; TRE decreased from 30.80 to 7.70 μm; and RMS decreased from 9.08 to 2.44 μm. These results demonstrate the effectiveness of the proposed error correction method.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Item | Value |
|---|---|
| Number of pinion teeth | 3 |
| Number of gear teeth | 60 |
| Nominal pressure angle/(°) | 20 |
| Mean spiral angle/(°) | 60 |
| Shaft angle/(°) | 90 |
| Pinion offset/mm | 30 |
| Face width/mm | 35.8 |
| Pitch distance/mm | 189.36 |
| Item | Value | |
|---|---|---|
| Concave | Convex | |
| Cutting tool radius/mm | 95.972 | 84.973 |
| Cutting tool profile angle/(°) | 14 | 35 |
| Tilt angle/(°) | −4.92 | −6.86 |
| Swivel angle/(°) | 116.34 | 82.12 |
| Radial distance/mm | 79.71 | 75.94 |
| Center roll position/(°) | 106.41 | 98.52 |
| Blank offset/mm | 27.98 | 32.24 |
| Machine root angle/(°) | −3.66 | −3.48 |
| Machine center to back/mm | 0.71 | −0.16 |
| Sliding base/mm | 11.73 | 16.11 |
| Ratio of roll | 19.52 | 20.29 |
| Item | Error Values | |
|---|---|---|
| Cutting tool radius/mm | ||
| Cutting tool profile angle/(°) | ||
| Tilt angle/(°) | ||
| Swivel angle/(°) | ||
| Radial distance/mm | ||
| Blank offset/mm | ||
| Machine root angle/(°) | ||
| Machine center to back/mm | ||
| Sliding base/mm | ||
| Ratio of roll |
| Item | ||||||
| Value | 95.959 | 14.045 | −4.897 | 116.350 | 79.676 | |
| 96.019 | 14.033 | −4.949 | 116.308 | 79.678 | ||
| 95.951 | 13.987 | −4.924 | 116.369 | 79.680 | ||
| ⋯ | ⋯ | ⋯ | ⋯ | ⋯ | ||
| 95.929 | 13.986 | −4.958 | 116.376 | 79.722 | ||
| 96.011 | 13.997 | −4.963 | 116.361 | 79.736 | ||
| 95.933 | 13.953 | −4.906 | 116.321 | 79.711 | ||
| Item | ||||||
| Value | 106.376 | 27.936 | −3.623 | 0.720 | 11.751 | 19.515 |
| 106.390 | 27.982 | −3.667 | 0.689 | 11.741 | 19.516 | |
| 106.411 | 27.989 | −3.705 | 0.710 | 11.697 | 19.524 | |
| ⋯ | ⋯ | ⋯ | ⋯ | ⋯ | ⋯ | |
| 106.393 | 27.936 | −3.669 | 0.736 | 11.683 | 19.515 | |
| 106.416 | 28.007 | −3.679 | 0.693 | 11.703 | 19.521 | |
| 106.451 | 27.955 | −3.628 | 0.754 | 11.753 | 19.523 | |
| Solution | RMS | TTE | TRE | ||||
|---|---|---|---|---|---|---|---|
| 1 | 95.928 | 79.735 | 0.682 | 19.518 | 2.87 | 8.8 | 10.1 |
| 2 | 95.932 | 79.734 | 0.682 | 19.519 | 3.15 | 8.8 | 10.12 |
| 3 | 95.930 | 79.738 | 0.684 | 19.520 | 3.14 | 8.8 | 10.14 |
| 4 | 95.931 | 79.735 | 0.681 | 19.521 | 2.89 | 8.82 | 10.13 |
| Item | Before Correction | After Correction | Changing Value |
|---|---|---|---|
| Cutting tool radius/mm | 95.972 | 95.928 | −0.044 |
| Radial distance/mm | 79.71 | 79.735 | 0.025 |
| Machine center to back/mm | 0.71 | 0.682 | −0.028 |
| Ratio of roll | 19.52 | 19.518 | −0.002 |
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Li, J.; Wang, Z.; Wu, Y. Multi-Error Collaborative Tooth Surface Modification of High Reduction Ratio Hypoid Gears Considering Cutter and Machine Tool Errors. Machines 2026, 14, 792. https://doi.org/10.3390/machines14070792
Li J, Wang Z, Wu Y. Multi-Error Collaborative Tooth Surface Modification of High Reduction Ratio Hypoid Gears Considering Cutter and Machine Tool Errors. Machines. 2026; 14(7):792. https://doi.org/10.3390/machines14070792
Chicago/Turabian StyleLi, Jun, Zhonghou Wang, and Yunlong Wu. 2026. "Multi-Error Collaborative Tooth Surface Modification of High Reduction Ratio Hypoid Gears Considering Cutter and Machine Tool Errors" Machines 14, no. 7: 792. https://doi.org/10.3390/machines14070792
APA StyleLi, J., Wang, Z., & Wu, Y. (2026). Multi-Error Collaborative Tooth Surface Modification of High Reduction Ratio Hypoid Gears Considering Cutter and Machine Tool Errors. Machines, 14(7), 792. https://doi.org/10.3390/machines14070792

