AGMA 94FTM9-1994 Analytical and Experimental Vibration Analysis of a Damaged Gear《破损齿轮解析和实验震动分析》.pdf
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1、 STD.AGMA 94FTM7-ENGL 1994 b87575 0004b14 205 = 94FTM9 1 Analytical and Experimental Vibration Analvsis of a 4 I Damaged Gear by: E Choy, M. Braun, and V. Polyshchuk University of Akron; J. Zakrajsek,and D. Townsend, Lewis Research Center, NASA; and R. Handschuh, US Army Research Center TECHNICAL PA
2、PER COPYRIGHT American Gear Manufacturers Association, Inc.Licensed by Information Handling ServicesSTD-AGMA SLIFTMS-ENGL 1794 0687575 0004635 141 W Analytical and Experimental Vibration Analysis of a Damaged Gear F. Choy, M. Braun, and V. Polyshchuk, University of Akron; J. Zakrajsek, and D. Townse
3、nd Lewis Research Center, NASA; and R. Handschuh, US Army Research Center The statements and opinions contained herein are those of the author and should not be construedas an officiai action or opinion of the American Gear Manufacturers Association. ABSTRACT: A comprehensive analytical procedure wa
4、s developed for predicting faults in gear transmission systems under normal operating conditions. A gear tooth fault model is developed to simulate the effects of pitting and wear on the vibration signal under normal operating conditions. The model uses changes in the gear mesh stiffness to simulate
5、 the effects of gear tooth faults. The overaii dynamics of the gear transmission system is evaluated by coupling the dynamics of each individual gear-rotor system through gear mesh forces generatedbetween each gear-rotor system and the bearing forces generated between the rotor and the gearbox struc
6、ture. The predicted results were compared with experimental results obtained from a spiral bevel gear fatigue test rig at NASA Lewis Research Center. The Wigner-Vile Distribution (WVD) was used to give a comprehensive comparison of the predicted and experimental results. The WVD method applied to th
7、e experimental results were also compared toother fault detection techniques to verify the WVDs ability to detect the pitting damage, and to determine its relative perfomce. Overail results show good correlation between the experimental vibration data of the damaged test gear and the predicted vibra
8、tion from the model with simulated gear tooth pitting damage. Results also verified that the WVD method can successfully detect and locate gear tooth wear and pitting damage. Copyright O 1994 American Gear Manufacturers Association 1500 King Street, Suite 201 Alexandria, Virginia, 223 14 October, 19
9、94 ISBN 1-55589444-8 COPYRIGHT American Gear Manufacturers Association, Inc.Licensed by Information Handling Services STDSAGMA 74FTM7-ENGL A974 W 0b87575 0004bLb O88 W ANALYTICAL AND EXPERIMENTAL VIBRATION ANALYSIS OF A DAMAGED GEAR F. K. Choy, Professor M. J. Braun, Professor V. Polyshchuk, Researc
10、h Associate The University of Akron, Akron, Ohio 44325 J. J. Zakrajsek, Aerospace Engineer D. P. Townsend, Senior Research Engineer NASA Lewis Research Center, Cleveland, Ohio 44135 R. F. Handschuh, US Army Research Laboratory, Cleveland, Ohio 44135 - I. INTRODUCTION In the last two decades, the use
11、 of gear transmissions in both defense and commercial applications has substantially increased. With the demand for higher power and performance, premature failures in transmissions often result in financial losses, and sometimes even lead to catastrophic consequences. In the aerospace industry, one
12、 of the major concerns is with gear fatigue failures in rotorcraft transmission systems. Large vibrations in gear transmission systems usually result in excessive gear tooth wear and possible tooth crack formation which, in turn, leads to premature gear failure. Thus, it is important to understand t
13、he dynamics of a transmission system over a variety of fault conditions, as well as under nominal conditions. With this, methods can be explored to detect and assess the magnitude of the gear damage present. Due to limitations in the number and types of experiments that can be performed, the only pr
14、actical means of obtaining this type of data is through analytical simulations. The major objective of the research reported herein is to develop and verify a model to predict the vibration of a transmission system with the effects of gear surface pitting and wear. To simulate the vibration of the t
15、ransmission system, the equations of motion were established individually for each rotor-gear-bearing system. The effects of tooth wear or surface pitting are simulated by changes in the magnitude and phase of the mesh stiffness. These localized changes in the gear mesh are incorporated into each ge
16、ar-rotor model for dynamic simulationl-31. The dynamics of each gear-rotor system are coupled with each other through the gear mesh interacting forces and the bearing support forces. The global vibrations of the system are evaluated by solving the transient dynamics of each rotor system simultaneous
17、ly with the vibration of the casing. In order to minimize the computational effort, the number of degrees- of-freedom of the system are reduced by using a modal synthesis procedurei,2. To verify the analytical model with experimental data, the dynamics of a single spiral bevel pinion with various de
18、grees of gear tooth damage was simulated. Results from the model were compared to experimental results using a joint time-frequency analysis method. This approach was chosen because of the large amount of information represented in the joint time-frequency results which can not be represented separa
19、tely in either the time domain or the frequency domain. The joint time-frequency analysis will provide an instantaneous frequency spectrum of the system at every instant of the revolution of the pinion while a Fourier Transform can only provide the average vibration spectrum of the signal obtained d
20、uring one complete revolution. In other words, the time-changing spectral density from the joint time-frequency spectra will provide information concerning the frequency distribution concentrated at, that instant around the excited instantaneous frequency which cannot be obtained in a regular vibrat
21、ion frequency spectrum. The joint time- frequency analysis approach applies the Wigner-Ville Distribution (WVD) 4-6 on the time vibration signai of the system. Some success has been achieved in applying the WVD to gear transmission systems 7,8 to recognize faults at various locations of the gear. Ot
22、her fault detection techniques, including frequency domain analysis9,10 and several time discriminant methods such as: FM411, NA4*, and NB4*12-141 are also used to compare with and verify with the WVD approach. Based on results of this study, some conclusions are made on the ability of the developed
23、 model to simulate gear tooth surface damage, and the ability of the WVD method to detect damage sufficient to verify with the model. - II. ANALYTICAL PROCEDURE The dynamics of the ith individual gear-shaft system can be evaluated through the equations of motion for the vibrations of a individual ro
24、tor-bearing-gear system as shown in Figure 11,2, given in matrix form, as COPYRIGHT American Gear Manufacturers Association, Inc.Licensed by Information Handling Serviceswhere Mj and KSI are respectively the mass and shaft stiffness matrices of the rotor, W; is the general displacement vector of the
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