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Helix Angle Effect on the Helical Gear Load Carrying Capacity

DOI: 10.4236/wjet.2018.64055, PP. 825-838

Keywords: Helical Gear, Helix Angle, Contact Ratio, Bending Stress, Contact Stress

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Abstract:

The aim of this study is to investigate the helix angle effect on the helical gear load carrying capacity, including the bending and contact load carrying capacity. During the simulation, the transverse contact ratio is calculated with respect to the constant pressure angle. By changing the helix angle, both the overlap contact ratio and total contact ratio are calculated and simulated. The bending stress and contact stress of a helical gear are calculated and simulated with respect to the helix angle. Solid (CAD) modelling of a pinion gear was obtained using SOLIDWORKS software. The analytically obtained results and finite elements method results are compared. It is observed that increasing the helix angle causes an increase of the contact ratio of the helical gear. Furthermore, increasing the contact ratio reduces the bending stress and contact stress of the helical gear. However, with a constant transverse contact ratio, it is possible to improve the total contact ratio depending on the helix angle. It is concluded that a higher helix angle increases the helical gear bending and contact load carrying capacity.

References

[1]  Bozca, M. (2017) Optimisation of Effective Design Parameters for an Automotive Transmission Gearbox to Reduce Tooth Bending Stress. Modern Mechanical Engineering, 7, 35-56.
https://doi.org/10.4236/mme.2017.72004
[2]  Ventkatesh, B., Prabhakar, Vattikuti, S.V. and Deva Prasad, S. (2014) Investigate the Combined Effect on Gear Ratio, Helix Angle, Facewidth and Module on Bending and Compressive Stress of Steel Alloy Heical Gear. Procedia Material Science, 6, 1865-1870.
https://doi.org/10.1016/j.mspro.2014.07.217
[3]  Zhan, J.X. and Fard, M. (2018) Effects of Helix Angle, Mechanical Errors, and Coefficient of Friction on the Time-Varying Tooth-Root Stress of Helical Gears. Measurement, 118, 135-146.
https://doi.org/10.1016/j.measurement.2018.01.021
[4]  Pedrero, J.I., Pleguezuelos, M. and Munoz, M. (2011) Contact Stress Calculation of Undercut Spur and Helical Gear Teeth. Mechanism and Machine Theory, 46, 1633-1646.
https://doi.org/10.1016/j.mechmachtheory.2011.06.015
[5]  Kang, J.S. and Choi, Y.-S. (2008) Optimisation of Helix Angle for Helical Gear System. Journal of Mechanical Science and Technology, 22, 2393-2402.
https://doi.org/10.1007/s12206-008-0804-z
[6]  Juvinall, R.C. and Marshek, K.M. (2006) Fundamentals of Machine Component Design. John Wiley & Sons, Inc., Hoboken.
[7]  Norton, R.L. (2011) Machine Design. Prentice Hall, Upper Saddle River, NJ.
[8]  ISO 6336-5: Calculation of Load Capacity of Spur and Helical Gears-Part 5: Strength and Quality of Materials.
[9]  ISO 6336-3: Calculation of Load Capacity of Spur and Helical Gears-Part 3: Calculation of Tooth Bending Strength.
[10]  Matek, R. (2005) Maschinenelemente. Vieweg & Sohn Verlag/Fachverlage, GmbH, Wiesbaden.
[11]  Decker (2009) Maschinenelemente. Carl Hanser Verlag, München.
[12]  Naunheimer, H., Bertsche, B., Ryborz, J. and Novak W. (2011) Automotive Transmissions. Springer-Verlag, Berlin, Heidelberg.
https://doi.org/10.1007/978-3-642-16214-5
[13]  Moaveni, S. (2003) Finite Element Analysis, Theory and Application with ANSYS. Prentice Hall, Upper Saddle River, NJ.
[14]  Chandrupatla, T.R. and Belegundu, A.D. (2002) Introduction to Finite Elements in Engineering. Prentice Hall, Upper Saddle River, NJ.

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