Meshing Performance Analysis of a Topologically Modified and Formed Internal Helical Gear Pair
Abstract
:1. Introduction
2. Mathematical Modeling of Internal Helical Gears Pair
2.1. Internal Helical Gear Tooth Equation
2.2. External Helical Gear Tooth Equations
2.3. Internal Helical Gear Pair Meshing Coordinate System
3. Topological Modification of Internal Helical Gear
3.1. Modification of External Helical Gear
3.2. Topologically Modified Tooth Equations
3.2.1. Tooth Equation of Profile-Modification External Helical Gear
3.2.2. Tooth Equations of Ground and Modified External Helical Gear
4. Digital Modeling of an Internal Helical Gear Pair
5. Experimental Verification
6. Conclusions
- This study proposes a variable-diameter helical modification method for longitudinal correction, where the tooth width center remains unmodified while both sides undergo material reduction. Combined with tooth profile modification, this approach is used to study the influence of modification on the transmission performance of an internal helical gear pair.
- The simulation results demonstrate that maintaining the longitudinal modification coefficient constant while increasing the profile modification coefficient shifts the maximum contact stress toward the tooth root. Concurrently, the meshing area expands longitudinally, significantly affecting the peak contact stress distribution. Conversely, keeping the profile modification coefficient constant while increasing the longitudinal modification coefficient narrows the contact area and lowers the stress concentration. Notably, the longitudinal modification coefficient has a greater influence on transmission error than the profile modification coefficient, as it decreases the meshing area, thereby increasing transmission instability during gear engagement and disengagement.
- The modified gear pair exhibited a 28.4% lower simulated transmission error than the unmodified version under 2500 Nm loading conditions. The amplitude of the experiment transmission error curve reached 12.5″. Based on these results, prototype gears were manufactured and tested. The experiments confirmed the modification effectiveness, demonstrating improved performance in the internal helical gear pair.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Items | Helical Gear | Internal Helical Gear |
---|---|---|
Number of teeth | 31 | 79 |
Helix direction | left-hand | left-hand |
Module | 3.5 | 3.5 |
Pressure angle/(°) | 20 | 20 |
Helix angle/(°) | 12 | 12 |
Tooth width/mm | 60 | 60 |
Group | Tooth Profile Modification Factor () | Tooth Modification Coefficient Factor () |
---|---|---|
A | 0.00003 | 0.0001 |
B | 0.00008 | 0.0001 |
C | 0.00004 | 0.00003 |
D | 0.00004 | 0.0001 |
E | 0.0 | 0.0 |
Item | Value |
---|---|
Material density/kg/m3 | 7.85 × 103 |
Poisson’s ratio | 0.29 |
Modulus of elasticity/MPa | 2.05 × 105 |
Unit type | C3D8I |
Friction factor | 0.06 |
Number of seeds localized in tooth width | 80 |
Number of seeds localized in tooth height | 10 |
Loading value/Nm | 1000; 2500 |
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Su, J.; Wei, X.; Lian, S.; Xu, J. Meshing Performance Analysis of a Topologically Modified and Formed Internal Helical Gear Pair. Machines 2025, 13, 340. https://doi.org/10.3390/machines13050340
Su J, Wei X, Lian S, Xu J. Meshing Performance Analysis of a Topologically Modified and Formed Internal Helical Gear Pair. Machines. 2025; 13(5):340. https://doi.org/10.3390/machines13050340
Chicago/Turabian StyleSu, Jianxin, Xiao Wei, Shilin Lian, and Jiewei Xu. 2025. "Meshing Performance Analysis of a Topologically Modified and Formed Internal Helical Gear Pair" Machines 13, no. 5: 340. https://doi.org/10.3390/machines13050340
APA StyleSu, J., Wei, X., Lian, S., & Xu, J. (2025). Meshing Performance Analysis of a Topologically Modified and Formed Internal Helical Gear Pair. Machines, 13(5), 340. https://doi.org/10.3390/machines13050340