564
Views
5
CrossRef citations to date
0
Altmetric
Original Articles

Power Loss Estimation and Thermal Analysis of an Aero-Engine Cylindrical Roller Bearing

, , &
Pages 1079-1094 | Received 13 Dec 2020, Accepted 19 Jul 2021, Published online: 29 Oct 2021

References

  • Palmgren, A. (1959), Ball and Roller Bearing Engineering, SKF Industries Inc.: Philadelphia.
  • Harris, T. A. (2001), Rolling Bearing Analysis, John Wiley & Sons: New York.
  • SKF Group. (2013), Rolling Bearings 6000 EN, SKF Group: Göteborg, Sweden.
  • Astridge, D. G. and Smith, C. F. (1972), “Heat Generation in High-Speed Cylindrical Roller Bearings,” Proceedings of the Institution of Mechanical Engineers Elastohydrodynamic Lubrication Symposium, Leeds, UK, April 11–13.
  • Rumbarger, J. H., Filetti, E. G., and Gubernick, D. (1973), “Gas Turbine Engine Main Shaft Roller Bearing System Analysis,” Journal of Lubrication Technology, 95(4), pp 401–416.
  • Takabi, J. and Khonsari, M. (2013), “Experimental Testing and Thermal Analysis of Ball Bearings,” Tribology International, 60, pp 93–103. doi:https://doi.org/10.1016/j.triboint.2012.10.009
  • Harris, T. A. and Kotzalas, M. N. (2006), Advanced Concepts of Bearing Technology: Rolling Bearing Analysis, CRC Press: Boca Raton, FL.
  • Cui, L. Wang, W., and Yanlei, Z. (2017), “Bubble Flow Analysis of High Speed Cylindrical Roller Bearing under Fluid–Solid Thermal Coupling,” International Journal of Rotating Machinery, 2017, pp 1–11.
  • Ma, C., Mei, X., Yang, J., Zhao, L., and Shi, H. (2015), “Thermal Characteristics Analysis and Experimental Study on the High-Speed Spindle System,” The International Journal of Advanced Manufacturing Technology, 79(1–4), pp 469–489. doi:https://doi.org/10.1007/s00170-015-6821-z
  • Wang, L. Q., Chen, G. C., Gu, L., and Zheng, D. Z. (2008), “Study on Operating Temperature of High-Speed Cylindrical Roller Bearings,” Journal of Aerospace Power, 23(1), pp 179–183.
  • Li, J., Xue, J., and Ma, Z. (2018), “Study on the Thermal Distribution Characteristics of High-Speed and Light-Load Rolling Bearing Considering Skidding,” Applied Sciences, 1593(8), pp 1–20. doi:https://doi.org/10.3390/app8091593
  • Yan, K., Hong, J., Zhang, J., Mi, W., and Wu, W. (2016), “Thermal–Deformation Coupling in Thermal Network for Transient Analysis of Spindle–Bearing System,” International Journal of Thermal Sciences, 104, pp 1–12. doi:https://doi.org/10.1016/j.ijthermalsci.2015.12.007
  • Ai, S., Wang, W., Wang, Y., and Zhao, Z. (2015), “Temperature Rise of Double-Row Tapered Roller Bearings Analyzed with the Thermal Network Method,” Tribology International, 87, pp 11–22. doi:https://doi.org/10.1016/j.triboint.2015.02.011
  • Pouly, F., Changenet, C., Ville, F., Velex, P., and Damiens, B. (2010), “Investigations on the Power Losses and Thermal Behaviour of Rolling Element Bearings,” Proceedings of the Institution of Mechanical Engineers - Part J: Journal of Engineering Tribology, 224(9), pp 925–933. doi:https://doi.org/10.1243/13506501JET695
  • Pouly, F., Changenet, C., Ville, F., Velex, P., and Damiens, B. (2010), “Power Loss Predictions in High-Speed Rolling Element Bearings Using Thermal Networks,” Tribology Transactions, 53(6), pp 957–967. doi:https://doi.org/10.1080/10402004.2010.512117
  • Schuller, F. T., Pinel, S. I., and Signer H. R. (1980), “Operating Characteristics of High-Speed, Jet-Lubricated 35-Millimeter-Bore Ball Bearing with a Single-Outer-Land-Guided Cage,” NASA Technical Paper. 1657.
  • Zheng, D. and Chen, W. (2017), “Thermal Performances on Angular Contact Ball Bearing of High-Speed Spindle Considering Structural Constraints under Oil–Air Lubrication,” Tribology International, 109, pp 593–601.
  • Zheng, D., Chen, W., and Li, M. (2018), “An Optimized Thermal Network Model to Estimate Thermal Performances on a Pair of Angular Contact Ball Bearings under Oil–Air Lubrication,” Applied Thermal Engineering, 131, pp 328–339.
  • Neurouth, A., Changenet, C., Ville, F., and Octrue, M. (2017), “Influence of Rolling Element Bearing Modeling on the Predicted Thermal Behavior of the FZG Test Rig,” Tribology Transactions, 60(4), pp 753–761. doi:https://doi.org/10.1080/10402004.2016.1208856
  • Niel, D., Changenet, C., Ville, F., and Octrue, M. (2019), “Thermomechanical Study of High Speed Rolling Element Bearing: A Simplified Approach,” Proceedings of the Institution of Mechanical Engineers - Part J: Journal of Engineering Tribology, 233(4), pp 541–552. doi:https://doi.org/10.1177/1350650117750806
  • Schlichting, H. (1968), Boundary-Layer Theory, 6th Ed., McGraw-Hill: New York.
  • Isbin, H., Moy, J., and Da Cruz, A. (1957 ), “Two‐Phase, Steam–Water Critical Flow,” AIChE Journal, 3(3), pp 361–365. doi:https://doi.org/10.1002/aic.690030315
  • Parker, R. J. (1984), “Comparison of Predicted and Experimental Thermal Performance of Angular-Contact Ball Bearings,” NASA Technical Paper 2275.
  • Ma, F., Li, Z., Wu, B., and An, Q. (2016), “An Accurate Calculation Method for Heat Generation Rate in Grease-Lubricated Spherical Roller Bearings,” Proceedings of the Institution of Mechanical Engineers - Part J: Journal of Engineering Tribology, 230(4), pp 472–480. doi:https://doi.org/10.1177/1350650115604873
  • Holman, J. P. (2010), Heat Transfer, 10th Ed., McGraw-Hill: New York.
  • Muzychka, Y. and Yovanovich, M. (2001), “Thermal Resistance Models for Non-Circular Moving Heat Sources on a Half Space,” Journal of Heat Transfer, 123(4), pp 624–632. doi:https://doi.org/10.1115/1.1370516
  • Cobb, E. and Saunders, O. (1956), “Heat Transfer from a Rotating Disk,” Proceedings of the Royal Society of London - Series A: Mathematical and Physical Sciences, 236(1206), pp 343–351.
  • Gazley, C., Jr. (1958), “Heat-Transfer Characteristics of Rotational and Axial Flow between Concentric Cylinders,” Transactions of the ASME, 1, pp 79–90.
  • Churchill, S. W. and Bernstein, M. (1977), “A Correlating Equation for Forced Convection from Gases and Liquids to a Circular Cylinder in Cross Flow,” Journal of Heat Transfer, 99, pp 300–306. doi:https://doi.org/10.1115/1.3450685
  • Stein, J. L. and Tu, J. F. (1994), “A State–Space Model for Monitoring Thermally Induced Preload in Anti-Friction Spindle Bearings of High-Speed Machine Tools,” Journal of Dynamic Systems, Measurement, and Control, 116(3), pp 372–386.
  • Dadouche, A. and Kerrouche, R. (2021), “Bearing Skidding Detection for High Speed and Aero Engine Applications,” Proceedings of the ASME Turbo Expo 2021: Turbomachinery Technical Conference and Exposition. Volume 9A: Structures and Dynamics — Aerodynamics Excitation and Damping; Bearing and Seal Dynamics; Emerging Methods in Design and Engineering. Virtual. June 7–11, 2021. V09AT24A014. ASME. https://doi.org/https://doi.org/10.1115/GT2021-59122

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.