Finite Element Analysis of Oil-Lubricated Elliptical Journal Bearings
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Finite Element Analysis of Oil-Lubricated Elliptical Journal Bearings

Authors: Marco T. C. Faria

Abstract:

Fixed-geometry hydrodynamic journal bearings are one of the best supporting systems for several applications of rotating machinery. Cylindrical journal bearings present excellent loadcarrying capacity and low manufacturing costs, but they are subjected to the oil-film instability at high speeds. An attempt of overcoming this instability problem has been the development of non-circular journal bearings. This work deals with an analysis of oil-lubricated elliptical journal bearings using the finite element method. Steadystate and dynamic performance characteristics of elliptical bearings are rendered by zeroth- and first-order lubrication equations obtained through a linearized perturbation method applied on the classical Reynolds equation. Four-node isoparametric rectangular finite elements are employed to model the bearing thin film flow. Curves of elliptical bearing load capacity and dynamic force coefficients are rendered at several operating conditions. The results presented in this work demonstrate the influence of the bearing ellipticity on its performance at different loading conditions.

Keywords: Elliptical journal bearings, non-circular journal bearings, hydrodynamic bearings, finite element method.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1100549

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References:


[1] B. Sternlicht and P. Lewis, “Vibration problems with high speed turbomachinery,” ASME Journal of Engineering for Industry, 1968, pp. 174–186.
[2] K. Knöss, “Journal bearings for industrial turbosets,” Brown Boveri Review, vol. 67, 1980, pp.300-308.
[3] R.C. Juvinall and K.M. Marshek, Fundamentals of Machine Component Design. New York: John Wiley & Sons, 5th Ed., 2012.
[4] R.G. Budynas and J.K. Nisbett, Shigley´s Mechanical Engineering Design. New York: McGraw-Hill, 9th Ed., 2011.
[5] R. Norton, Machine Design – An Integrated Approach. New York: Prentice-Hall, 2nd Ed., 2000.
[6] P.E. Allaire and R.D. Flack, “Design of journal bearings for rotating machinery,” in Proc 10th Turbomachinery Symposium, Houston, 1981, pp. 25–45.
[7] F.A.G. Correia, “Determinação das características de desempenho de mancais radiais elípticos utilizando o método de elementos finitos”, M.Sc. Thesis, Graduate Program in Mechanical Engineering, Universidade Federal de Minas Gerais, Belo Horizonte, Brazil, 2007.
[8] P. Klit and J.W. Lund, “Calculation of the dynamic coefficients of a journal bearing, using a variational approach,” ASME Journal of Tribology, vol. 108, 1986, pp.421-425.
[9] K.J. Bathe, Finite element procedures in engineering analysis. New York: Prentice-Hall, 1982.
[10] B.J. Hamrock, Fundamentals of Fluid Film Lubrication. New York: McGraw-Hill, 1994.
[11] A. Singh and B.K. Gupta, “Stability limits of elliptical journal bearing supporting flexible rotors,” Wear, vol. 77, 1982, pp. 159-170.
[12] W.M. Miranda and M.T.C. Faria, “Lateral vibration analysis of flexible shafts supported on elliptical journal bearings”, Tribology Letters, vol. 48, 2012, pp.217-227.
[13] D. Childs, 1993, Turbomachinery rotordynamics. New York: John Wiley & Sons, 1993.
[14] J.M. Vance, Rotordynamics of turbomachinery. New York: John Wiley & Sons, 1988.