The Effect of Misalignment on Rotor Vibrations

Author:

Nikolajsen J. L.1

Affiliation:

1. Staffordshire University, School of Engineering, Stafford, ST18 0AD, England

Abstract

Rotors with three or more fluid-film bearings (or fluid seals) have “redundant” supports, and, therefore, interdependent bearing loads that are generally unknown both in magnitude and direction. The steady-state bearing eccentricities and the dynamic stiffness and damping coefficients of the bearings are, therefore, also unknown since both are functions of the bearing loads. Thus, the dynamic behavior of multibearing rotors generally cannot be predicted with good accuracy without access to a procedure for calculating the steady-state bearing loads and eccentricities. This paper outlines such a procedure in terms of both the influence coefficient method, the transfer matrix method, and the finite element method. Radial bearing misalignment and flexibility of the bearing back-up structures are accounted for. Once the eccentricities are available, the bearing stiffness and damping coefficients can be calculated in the usual way and used to predict critical speeds, instability threshold speed, and rotor response to imbalance. A numerical example is presented that illustrates some of the nonlinear effects of bearing support redundancy, notably the large variations in instability threshold speed with radial bearing misalignment. The example shows how the method can be used to determine the level of bearing misalignment that leads to optimum rotor stability. It is concluded that no simple guide lines exist by which optimum stability can be achieved. Neither perfect bearing alignment nor equal load sharing between bearings necessarily lead to optimum stability.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference16 articles.

1. Argyris J. H. , 1958, “On the Analysis of Complex Elastic Structures,” Applied Mechanics Reviews, ASME, New York, Vol. 11, No. 7, pp. 331–338.

2. Childs, D., 1981, “Rotordynamic Moment Coefficients for Finite-Length Turbulent Seals,” Paper presented at the IFTOMM Conf on Rotordynamic Problems in Power Plants.

3. Kelly, J. H., 1989, “Analysis of Multi-Stage Centrifugal Pumps Using Transfer Matrices,” MSc thesis, Texas A&M University, College Station, TX.

4. Lund, J. W., 1965, “Rotor-Bearing Dynamics Design Technology, Part III: Design Handbook for Fluid-Film Type Bearings,” Technical Report AFAPL-TR-64-45, U.S. Air Force.

5. Lund J. W. , 1974, “Stability and Damped Critical Speeds of a Flexible Rotor in Fluid-Film Bearings,” ASME Journal of Engineering for Industry, Vol. 96, Ser. B, No. 2, pp. 525–533.

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