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Helical gear multi-contact tooth mesh load analysis with flexible bearings and shafts

  • Li, Chengwu (State Key Lab for Mechanical Transmission, Chongqing University) ;
  • He, Yulin (State Key Lab for Mechanical Transmission, Chongqing University) ;
  • Ning, Xianxiong (State Key Lab for Mechanical Transmission, Chongqing University)
  • Received : 2013.03.13
  • Accepted : 2015.07.28
  • Published : 2015.08.25

Abstract

A multi-contact tooth meshing model for helical gear pairs considering bearing and shaft deformations is proposed. First, to easily incorporate into the system model, the complicated Harris' bearing force-displacement relationship is simplified applying a linear least square curve fit. Then, effects of shaft and bearing flexibilities on the helical gear meshing behavior are implemented through transformation matrices which contain the helical gear orientation and spatial displacement under loads. Finally, true contact lines between conjugated teeth are approximated applying a modified meshing equation that includes the influence of tooth flank displacement on the tooth contact induced by shaft and bearing displacements. Based on the model, the bearing's force-displacement relation is examined, and the effects of shaft deformation and external load on the multi-contact tooth mesh load distribution are also analyzed. The advantage of this work is, unlike previous works to search true contact lines through time-consuming iterative strategy, to determine true contact lines between conjugated teeth directly with presentation of deformations of bearings and shafts.

Keywords

References

  1. Baud, S. and Velex, P. (2002), "Static and dynamic tooth loading in spur and helical geared systems-experiments and model validation", J. Mech. Des., 124, 334-346. https://doi.org/10.1115/1.1462044
  2. Chen, Y.C. and Tsay, C.B. (2001), "Bearing contact of a helical gear pair with involute teeth pinion and modified circular-arc teeth gear", Proc. IMechE, Part C: J. Mech. Eng. Sci., 215, 1175-1187. https://doi.org/10.1177/095440620121500104
  3. Harris, T. A. (2001), Rolling Bearing Analysis, 4th Edition, John Wiley & Sons, Inc., New York, NY, USA.
  4. Hedlund, J. and Lehtovaara, A. (2007), "Modeling of helical gear contact with tooth deflection", Tribol. Int., 40, 613-619. https://doi.org/10.1016/j.triboint.2005.11.004
  5. Hotait, M.A., Talbot, D. and Kahraman, A. (2007), "An investigation of the influence of shaft misalignments on bending stresses of helical gear with lead crown", Proceedings of the ASME 2007 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference, Las Vegas, Nevada, USA, September.
  6. Kar, C. and Mohanty, A.R. (2008), "Determination of time-varying contact length, friction force, torque and forces at the bearings in a helical gear system", J. Sound Vib., 309, 307-319. https://doi.org/10.1016/j.jsv.2006.09.031
  7. Kolivand, M. and Kahraman, A. (2011), "A general approach to locate instantaneous contact lines of gears using surface of roll angle", J. Mech. Des., 133, 014503. https://doi.org/10.1115/1.4003142
  8. Litvin, F.L., Lu, J., Townsend, D.P. and Howkins, M. (1999), "Computerized simulation of meshing of conventional helical involute gears and modification of geometry", Mech. Mach. Theory, 34, 123-147. https://doi.org/10.1016/S0094-114X(98)00013-5
  9. Litvin, F.L., Fuentes, A., Gonzalez-Perez, I., Carvenali, L., Kawasaki, K. and Handschuh, R.F. (2003), "Modified involute helical gears: computerized design, simulation of meshing and stress analysis", Comput. Meth. Appl. M, 192, 3619-3655. https://doi.org/10.1016/S0045-7825(03)00367-0
  10. Litvin, F.L. and Fuentes, A. (2004), Gear Geometry and Applied Theory, 2nd Edition, Cambridge University Press, Cambridge, England, UK.
  11. Litvin, F.L., Gonzalez-Perez, I., Fuentes, A., Vecchiato, D. and Sep, T.M. (2005), "Generalized concept of meshing and contact of involute crossed helical gears and its application", Comput. Method Appl. M, 194, 3710-3745. https://doi.org/10.1016/j.cma.2004.09.009
  12. Litvin, F.L., Gonzalez-Perez, I., Fuentes, A., Hayasaka, K. and Yukishima, K. (2005), "Topology of modified surfaces of involute helical gears with line contact developed for improvement of bearing contact, reduction of transmission errors, and stress analysis", Math. Comput. Model., 42, 1063-1078. https://doi.org/10.1016/j.mcm.2004.10.028
  13. Miyoshi, Y., Tobisawa, K. and Saiki, K. (2007), "Composite analysis method of tooth contact load distribution of helical gear", Proceedings of the ASME 2007 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference, Las Vegas, Nevada, USA, September.
  14. Vinayak, H. and Singh, R. (1998), "Multi-body dynamics and modal analysis of compliant gear bodies", J. Sound Vib., 210, 171-214. https://doi.org/10.1006/jsvi.1997.1298
  15. Wink, C.H. and Serpa, A.L. (2008), "Performance assessment of solution methods for load distribution problem of gear teeth", Mech. Mach. Theory, 43, 80-94. https://doi.org/10.1016/j.mechmachtheory.2006.12.010
  16. Wang, J., Lim, T.C. and Ding, Y. (2012), "Multi-tooth contact behavior of helical gear applying modified meshing equation", Proc. IMechE, Part C: J. Mech. Eng. Sci., 227(1), 146-160.
  17. Wu, S.H. and Tsai, S.J. (2009), "Contact stress analysis of skew conical involute gear drives in approximate line contact", Mech. Mach. Theory, 44, 1658-1676. https://doi.org/10.1016/j.mechmachtheory.2009.01.010
  18. Zhang, Y. and Fang, Z. (1999), "Analysis of tooth contact and load distribution of helical gears with crossed axes", Mech. Mach. Theory, 34, 41-57. https://doi.org/10.1016/S0094-114X(98)00006-8

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