High-Speed Spiral Bevel GEAR Dynamic Rules Considering the Impact of Web Thicknesses and Angles
Abstract
:1. Introduction
2. Basic Theory of Modified VFIFE Method and Dynamic Damping Model of SBG
2.1. Modified VFIFE Method
2.2. Establishing of Dynamic Damping Model of Gear Dynamics
2.2.1. Contact Model
2.2.2. Relative Velocity and Damping Model
3. Basic Model of SBG
3.1. Basic Parameters and Machine-Tool Settings
3.2. Models and Settings
4. SBG Dynamic Analysis with Different Web Thicknesses
4.1. Model Establishment
4.2. Results Discussion
4.2.1. Contact Force and Contact Stress
4.2.2. Dynamic Transmission Error
5. SBG Dynamic Analysis with Different Web Support Angles
5.1. Model Establishment
5.2. Results Discussion
5.2.1. Contact Force and Contact Stress
5.2.2. Dynamic Transmission Error
5.2.3. Dynamic Stresses
6. Conclusions
- (1)
- The proposed modified VFIFE method showed good balance in computing speed and computing accuracy. Computing time was less than 8 h for models with more than 140 thousand elements. Meshing period and rules are adequately illustrated in the results. Thus, the proposed method would be suitable for high-speed simulation.
- (2)
- The dynamic performance of spiral bevel gear models with different web thicknesses was simulated and compared, in which the results showed that web thicknesses had little influence on meshing performance but obviously affected dynamic transmission error.
- (3)
- The dynamic performance of spiral bevel gear models with different web support angles was simulated and compared, in which the results showed that support angles affected both meshing performance and dynamic characteristics more distinctly than web thicknesses.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Items | Pinion | Gear |
---|---|---|
Tooth number | 27 | 79 |
Modulus (mm) | 3.15 | 3.15 |
Pressure angle (°) | 20 | 20 |
Mean spiral angle (°) | 30 | 30 |
Face width (mm) | 30 | 30 |
Shaft angle (°) | 90 | 90 |
Mean cone distance (mm) | 116.49 | 116.49 |
Hand of spiral | Right | Left |
Pitch angle (°) | 18.87 | 71.13 |
Root angle (°) | 17.9 | 72.1 |
Addendum (mm) | 3.34 | 1.32 |
Dedendum (mm) | 1.91 | 3.94 |
Items | Pinion | Gear | |
---|---|---|---|
Concave | Convex | - | |
Profile angle (°) | 20 | 20 | 20 |
Point radius (mm) | 94.01 | 96.18 | 94.26 |
Cutter diameter (mm) | 152.4 | 190.5 | |
Cradle angle (°) | −50.44 | −48.81 | 50.16 |
Radial distance (mm) | 104.53 | 108.77 | 107.42 |
Blank offset (mm) | 1.41 | −0.62 | 0 |
Machine center to back (mm) | −1.16 | −0.13 | 0 |
Sliding base (mm) | 0.41 | 0.10 | −0.50 |
Machine root angle (°) | 17.90 | 69.44 |
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Hou, X.; Qiu, L.; Zhang, Y.; Li, Z.; Zhu, R.; Lyu, S.-K. High-Speed Spiral Bevel GEAR Dynamic Rules Considering the Impact of Web Thicknesses and Angles. Appl. Sci. 2022, 12, 3084. https://doi.org/10.3390/app12063084
Hou X, Qiu L, Zhang Y, Li Z, Zhu R, Lyu S-K. High-Speed Spiral Bevel GEAR Dynamic Rules Considering the Impact of Web Thicknesses and Angles. Applied Sciences. 2022; 12(6):3084. https://doi.org/10.3390/app12063084
Chicago/Turabian StyleHou, Xiangying, Linyue Qiu, Yuzhe Zhang, Zhengminqing Li, Rupeng Zhu, and Sung-Ki Lyu. 2022. "High-Speed Spiral Bevel GEAR Dynamic Rules Considering the Impact of Web Thicknesses and Angles" Applied Sciences 12, no. 6: 3084. https://doi.org/10.3390/app12063084
APA StyleHou, X., Qiu, L., Zhang, Y., Li, Z., Zhu, R., & Lyu, S.-K. (2022). High-Speed Spiral Bevel GEAR Dynamic Rules Considering the Impact of Web Thicknesses and Angles. Applied Sciences, 12(6), 3084. https://doi.org/10.3390/app12063084