Practical Design Against Torsional Vibration.

One of the foremost concerns facing turbomachinery users today is that of torsional vibration. In contrast to lateral vibration problems, torsional failures are especially heinous since the first symptom of a problem is often a broken shaft, gear tooth, or coupling. The difficulty of detecting incipient failures in the field makes the performance of a thorough torsional vibration analysis an essential component of the turbomachinery design process. The authors' purpose is to provide users with a practical design procedure that can be used to ensure that their systems will not 189 encounter major difficulties in the field. It has been the authors' experience that most turbomachinery users encounter little difficulty in determining their machine's natural frequencies due to the large number of resources available in that area. However, problems often arise when they must translate this information into an accurate prediction of whether or not their design will experience torsional vibration problems. Accordingly, this presentation concentrates on the steps that should be taken once the natural frequencies have been found. A cursory review is presented of popular procedures, such as Holzer's method, for obtaining the machine's natural frequencies and mode shapes. This area is purposely limited in detail since there are many excellent resources in the literature that may be consulted for a more rigorous treatment. The generation of an interference or Campbell diagram is then treated in far more detail. Of particular interest is generation of the upward sloping lines representing the system's excitation frequen­ cies. The various excitation sources commonly found in turbomachinery, such as gears, vaned impellers, and electric motors, are discussed along with the excitation frequencies that each introduces into the system. The unique problems associated with the startup of systems driven by synchronous motors are also described. Once the interference points have been generated, the user then generally has two choices for dealing with them. Either design changes, such as alteration of couplings, are implemented to eliminate the interferences or the interference points are subjected to further analysis. Many users automatically opt for the first alter­ native, since they believe they must avoid resonance conditions at all costs. While this is an admirable and worthy goal under ideal circumstances, the cost of achieving it is often unwieldy. Instead, the procedure provided herein advocates analysis of all interference points prior to the implementation of costly design changes. The analysis might be as simple as inspection of the appropriate mode shape or the unit's torque vs speed curve. Interference points can frequently be eliminated from considera­ tion based on these inspections revealing that the induced torques are negligible. The resonant points that cannot be thereby removed should be investigated using a damped forced vibration analysis. Detailed guidelines for performing the damped analysis are presented herein. Methods for determining the magnitudes and locations of excitation torques for various machinery classes are given. Procedures are provided for obtaining damping coefficients for typical sources such as impellers, shaft material hysteresis, and couplings. Finally, users are provided with ground rules for utilizing the calculated cyclic torques and stresses to determine their design's adequacy. If the analysis identifies problem areas, practical and relatively simple rectification methods are provided. Lastly, a complete Dyrobes Rotordynamics Software https://dyrobes.com 190 PROCEEDINGS OF THE TWENTY-FIFTH TURBOMACHINERY SYMPOSIUM step-by-step analysis procedure is given that summarizes the entire preceding discussion. This methodology can be utilized in the design of virtually any turbomachinery system the user may encounter.

[1]  P. N. Williams,et al.  The importance of complete drive train analysis for brushless salient pole motor drives , 1989 .

[2]  T. J. Hammons,et al.  Electrical Damping and Its Effect on Accumulative Fatigue Life Expenditure of Turbine-Generator Shafts Following Worst-Case Supply System Disturbances , 1983, IEEE Power Engineering Review.

[3]  D. Lambrecht,et al.  Torsional Performance of Turbine Generator Shafts Especially Under Resonant Excitation , 1982, IEEE Transactions on Power Apparatus and Systems.

[4]  R. D. Rana,et al.  Generator loss of field; Experience and studies for AEP's Rockport Plant , 1989 .

[5]  C. W. Chapman Zero (Or Low) Torsional Stiffness Couplings , 1969 .

[6]  K. A. Haines,et al.  Torsional Vibrations of a Boiler Feed Pump , 1978 .

[7]  Arno Frei,et al.  Design Of Pump Shaft Trains Having Variable-Speed Electric Motors , 1986 .

[8]  J. C. Wachel,et al.  Analysis Of Torsional Vibrations In Rotating Machinery. , 1993 .

[9]  Ivan E. Morse,et al.  Torsional Response of a Gear Train System , 1972 .

[10]  J. W. Lund Critical Speeds, Stability and Response of a Geared Train of Rotors , 1978 .

[11]  S. Mahalingam,et al.  Dynamic loading of gear teeth , 1974 .

[12]  Hudson H. James Lateral Vibration Created By Torsional Coupling Of A Centrifugal Compressor System Driven By A Current Source Drive For A Variable Speed Induction Motor. , 1992 .

[13]  A. J. Smalley,et al.  Dynamic Shock Phenomena in Rolling Mills , 1972 .

[14]  A. Seireg,et al.  Evaluation of Dynamic Factors for Spur and Helical Gears , 1970 .

[15]  J. P. Den Hartog Handbook on torsional vibration: com-piled by E. J. Nestorides. 664 pages, diagrams, 6 X 9 in. New York, Cambridge University Press, 1958. Price, $19.50 , 1959 .

[16]  C. C. Wang,et al.  Rotational Vibration With Backlash: Part 1 , 1978 .

[17]  J. R. Shadley,et al.  Unstable Self-Excitation of Torsional Vibration in AC Induction Motor Driven Rotational Systems , 1992 .

[18]  Werner Heil,et al.  Large Converter-Fed Adjustable Speed AC Drives For Turbomachines. , 1992 .

[19]  H. G. Yates Prediction and Measurement of Vibration in Marine Geared-shaft Systems: , 1955 .

[20]  P. B. Thames,et al.  Torsional Vibrations in Synchronous Motor-Geared-Compressor Drives , 1959, Transactions of the American Institute of Electrical Engineers. Part III: Power Apparatus and Systems.

[21]  Rainer Nordmann,et al.  Torsional Vibrations in Turbogenerators Due to Network Disturbances , 1990 .

[22]  Robert A Badgley,et al.  Program for Helicopter Gearbox Noise Prediction and Reduction , 1970 .

[23]  S. Doughty A Rayleigh-Type Inclusion of Shaft Inertia in Torsional Vibration Analysis , 1994 .

[24]  Troy D. Graybeal The nature of vibration in electric machinery , 1944, Electrical Engineering.

[25]  R. G. Harley,et al.  Measuring the Torsional Modal Frequencies of a 900-MW Turbogenerator , 1986, IEEE Power Engineering Review.

[26]  J.R. Smith,et al.  The Effect of Hysteretic Damping on Turbogenerator Shaft Torsional Oscillations , 1986, IEEE Transactions on Energy Conversion.

[27]  David F. Rogers,et al.  THE SOCIETY OF NAVAL ARCHITECTS AND MARINE ENGINEERS , 1977 .

[28]  Ronald L. Eshleman Torsional Vibration Of Machine Systems , 1977 .

[29]  R. W. Stuart Mitchell The Design Office Problem in the Estimation of the Torsional Resonance Characteristics of Small Marine Diesel-Propulsion Units , 1943 .

[30]  Royce N. Brown Torsional-Damping-Transient and Steady State , 1984 .

[31]  B. Lazan,et al.  EFFECT OF DAMPING CONSTANTS AND STRESS DISTRIBUTION ON THE RESONANCE RESPONSE OF MEMBERS , 1952 .

[32]  W. J. Chen,et al.  Torsional Vibrations of Synchronous Motor Driven Trains Using p-Method , 1995 .

[33]  Shan Shih,et al.  Prediction and Control of Heavy Duty Powertrain Torsional Vibration , 1992 .

[34]  Robert L. Hyde,et al.  Starting Characteristics of Electric Submergible Oil Well Pumps , 1986, IEEE Transactions on Industry Applications.

[35]  D. Triezenberg Characteristic Frequencies and Mode Shapes for TurboGenerator Shaft Torsional Vibrations , 1980, IEEE Transactions on Power Apparatus and Systems.

[36]  E. I. Pollard Torsional Response of Systems , 1967 .

[37]  G. Williams,et al.  The Elastic Hysteresis of Steel , 1912 .

[38]  R. L. Eshleman Torsional Response of Internal Combustion Engines , 1974 .

[39]  G. Bradfield,et al.  Internal Friction of Solids , 1951, Nature.

[40]  D. J. Sheppard Torsional vibration resulting from adjustable-frequency AC drives , 1988 .

[41]  R. N. Brown,et al.  A Torsional Vibration Problem as Associated With Synchronous Motor Driven Machines , 1960 .

[42]  D.N. Walker,et al.  Torsional Vibration and Fatigue of Turbine-Generator shafts , 1981, IEEE Transactions on Power Apparatus and Systems.

[43]  L. A. Kilgore,et al.  Transient Starting Torques in Induction Motors , 1940, Transactions of the American Institute of Electrical Engineers.

[44]  L. Hannett,et al.  Turbine-Generator Impact Torques in Routine and Fault Operations , 1979, IEEE Transactions on Power Apparatus and Systems.

[45]  J. C. Wachel,et al.  Improved Reliability Through The Use Of Design Audits. , 1995 .

[46]  Charles B. Mayer Torsional Vibration Problems and Analyses of Cement Industry Drives , 1981, IEEE Transactions on Industry Applications.

[47]  E. I. Pollard Transient Torsional Vibration Due to Suddenly Applied Torque , 1972 .

[48]  Edgar F. Merrill,et al.  Oscillatory Torques During Synchronous Motor Starting , 1970 .

[49]  Stephen P. Murphy Application Of Variable Speed Electric Motors For Pumps , 1993 .

[50]  H. Ming Chen,et al.  A Generalized And Simplified Transient Torque Analysis For Synchronous Motor Drive Trains. , 1983 .

[51]  W. D. Mark Analysis of the vibratory excitation of gear systems: Basic theory , 1978 .

[52]  Harold R. Simmons,et al.  Lateral Gear Shaft Dynamics Control Torsional Stresses in Turbine-Driven Compressor Train , 1984 .

[53]  John Mirro,et al.  The Calculation And Verification Of Torsional Natural Frequencies For Turbomachinery Equipment Strings , 1982 .

[54]  S. L. Harris,et al.  Dynamic Loads on the Teeth of Spur Gears , 1958 .

[55]  B. O'Connor The Viscous Torsional Vibration Damper , 1947 .

[56]  John S. Joyce,et al.  Torsional Fatigue of Turbine-Generator Shafts Caused by Different Electrical System Faults and Switching Operations , 1978, IEEE Transactions on Power Apparatus and Systems.

[57]  D.A. Hodges,et al.  Results of subsynchronous resonance test at Mohave , 1975, IEEE Transactions on Power Apparatus and Systems.

[58]  Fred R. Szenasi,et al.  Transient Analyses Of Synchronous Motor Trains , 1978 .

[59]  Harold R. Simmons,et al.  Effective Tools for Diagnosing Elusive Turbomachinery Dynamics Problems in the Field , 1989 .

[60]  Michael J. Costello Understanding The Vibration Forces In Induction Motors. , 1990 .