Dynamics of rub-impact of dual-rotor systems and the experimental verification based on vibration accelerations measurement

被引:0
|
作者
Wang N. [1 ]
Jiang D. [1 ]
Han T. [1 ,2 ]
Xu H. [1 ]
机构
[1] State Key Laboratory of Control and Simulation of Power System and Generation Equipment, Tsinghua University, Beijing
[2] AVIC Aero Engine Control Institute, Wuxi
来源
Jiang, Dongxiang | 1600年 / Chinese Vibration Engineering Society卷 / 36期
关键词
Beat vibration; Dual-rotor; Dynamics analysis; Envelop analysis; Rub-impact; Vibration acceleration; Vibration spectrum;
D O I
10.13465/j.cnki.jvs.2017.14.011
中图分类号
学科分类号
摘要
Based on the rub-impact characteristics of aero-engine, the dynamic model of a dual-rotor system under rub-impact was established. The elastic deformation, contact penetration and elastic damping support during rub-impact between the casing and wheel disk were fully considered. The finite element model and its boundary conditions of a quayside gantry crane were established. The collision force and friction were calculated by utilizing the Hertz contact theory and Coulomb model, then the kinetic differential equation of rub-impact under dry rubbing status was derived. The first ten natural frequencies, the corresponding mode shapes and time-history of displacement responses were given based on the analysis of the modes and dynamic responses of the gantry crane system. The calculation and analysis above are helpful for preventing the gantry crane from working in resonant area and for keeping the oversize dynamic deformation under restraint, which can be applied in designing quayside gantry crane systems. Applying the variable step size fourth order Runge-Kutta method, the rub responses of the dual-rotor system were obtained. As for aero-engine, it may not be accessible to directly detect the displacement signals of the rotor system, and only the acceleration signals on the pedestal are easy to be acquiced. In order to analyse the bearing pedestal acceleration characteristics under rub-impact status, a dual-rotor system test rig was designed. Rub-impact experiments were carried out and the vibration acceleration signals collected from the bearing pedestal were analyzed by means of frequency spectrum and envelop analysis in order to extract the rubbing faults' characteristics. The results indicate that the doubling frequency and combination frequencies from two different exciting sources can be considered as the typical characteristics of rub-impact in aero-engines. The beat vibration usually becomes noticeable when the speed difference between the two dual-rotor speeds is less than 20% of the operating speeds. The results of the dynamic simulation are in accordance with the experiments, which verifies the effectiveness of the proposed rub-impact model of dual-rotor systems. © 2017, Editorial Office of Journal of Vibration and Shock. All right reserved.
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页码:71 / 76and97
页数:7626
相关论文
共 21 条
  • [1] Liu Y., Wang D., Hong J., Et al., Analysis of whole aero-engine vibration control technology, Aeroengine, 39, 5, pp. 1-18, (2013)
  • [2] Wang Y., Wang L., Liao M., Analysis of basic problems for aero-engine vibration measurement, Aero-engine, 38, 3, pp. 49-53, (2012)
  • [3] Chen G., Nonlinear dynamic response analysis of rotor-ball bearing system including unbalance-rubbing-looseness coupled faults, Journal of Vibration and Shock, 27, 9, pp. 100-104, (2008)
  • [4] Muszynaka A., Rotor-to-stationary element rub-related vibration phenomenon in rotating machinery-literature survey, Sound and Vibration Digest, 21, 3, pp. 3-11, (1989)
  • [5] Ahmad S., Rotor casing contact phenomenon in rotor dynamics-literature survey, Journal of Vibration and Control, 16, 9, pp. 1369-1377, (2010)
  • [6] Chen Y., Zhang H., Review and prospect on the research of dynamics of complete aero-engine systems, Acta Aeronautica et Astronautica Sinca, 32, 8, pp. 1371-1391, (2011)
  • [7] Tai X., Ma H., Tan Z., Et al., Dynamic characterist-ics of a continuous rotating beam model with a rubbing fault, Journal of Vibration and Shock, 32, 18, pp. 43-48, (2013)
  • [8] Turner K., Adams M., Dunn M., Simulation of Engine Blades Tip Rub Inducevibration
  • [9] Zhang Y.M., Wen B.C., Liu Q.L., Sensitivity of rotor-stator systems with rubbing, Mechanics of Structures and Machines, 30, 2, pp. 203-211, (2002)
  • [10] Roques S., Legrand M., Cartraud P., Et al., Modeling of a rotorspeed transient response with radial rubbing, Journal of Sound and Vibration, 329, 5, pp. 527-546, (2010)