Research on reverse engineering for rotor-bearing systems using the finite element method

被引:0
|
作者
Chen, Ming-Fei [1 ]
Huang, Wei-Lun [2 ]
Tu, Shun-Hsu [3 ]
Yang, Chung-Heng [2 ]
机构
[1] Department of Mechatronics Engineering, National Changhua University of Education, Changhua, 50007, Taiwan
[2] Department of Mechatronics Engineering, National Changhua University of Education, Changhua, 50007, Taiwan
[3] R and D Department Sky Leading, Corporation Chupei, Hsin Chu County, 30204, Taiwan
关键词
Modal analysis - Machine tools - Reverse engineering - Stiffness - Couplings - Speed;
D O I
暂无
中图分类号
学科分类号
摘要
The critical speed is one of the major dynamic parameters of a rotor-bearing system. Because the working speed of a rotor-bearing system continuously increases, problems of second-order and higher-order critical speed necessarily appear. The critical speed of the rotor-bearing system is obviously affected by these parameters, which include the rotor's dimensions, materials, and the stiffness of its bearings and its coupling. Identifying the relationship between these parameters and the critical speed becomes extremely important. Therefore, this study obtains the critical speed and the bearing stiffness in the rotor-bearing system by employing a reverse engineering approach, combining analysis, modal testing and order tracking. First, the finite-element model of the rotor-bearing system is developed, and this can be identified by the results of the modal testing. The Campbell diagram and the critical speed map can be obtained by the correction model combined with the gyroscopic effect. Finally, the optimization method obtains the bearing stiffness by comparing the critical speed map and testing the results of the order-tracking. This investigation provides a method to determine the dynamic characteristics and critical speed map for the rotor-bearing system, and can be used to design and develop a high-speed rotating machine, including the spindles of machine tools, and the vacuum pumps.
引用
收藏
页码:381 / 390
相关论文
共 50 条
  • [22] An improved method of detecting chaotic motion for rotor-bearing systems
    Shi M.-L.
    Wang D.-Z.
    Zhang J.-G.
    Journal of Shanghai Jiaotong University (Science), 2013, 18 (2) : 229 - 236
  • [23] An efficient method for the unbalance response analysis of rotor-bearing systems
    Hong, SW
    Park, JH
    JOURNAL OF SOUND AND VIBRATION, 1997, 200 (04) : 491 - 504
  • [24] An Improved Method of Detecting Chaotic Motion for Rotor-Bearing Systems
    师名林
    王德忠
    张继革
    JournalofShanghaiJiaotongUniversity(Science), 2013, 18 (02) : 229 - 236
  • [25] On the transient analysis of rotor-bearing systems
    Subbiah, R.
    Rieger, N.F.
    Journal of vibration, acoustics, stress, and reliability in design, 1988, 110 (04): : 515 - 520
  • [26] ON THE TRANSIENT ANALYSIS OF ROTOR-BEARING SYSTEMS
    SUBBIAH, R
    RIEGER, NF
    JOURNAL OF VIBRATION ACOUSTICS STRESS AND RELIABILITY IN DESIGN-TRANSACTIONS OF THE ASME, 1988, 110 (04): : 515 - 520
  • [27] Contribution on the optimization of rotor-bearing systems
    Nicoara, DD
    Munteanu, MG
    TOPICS AND TRENDS IN EXPERIMENTAL STRUCTURAL MECHANICS, 1999, 1463 : 369 - 374
  • [28] DYNAMIC ANALYSIS OF ANISOTROPIC ASYMMETRIC ROTOR-BEARING SYSTEM BASED ON THREE-DIMENSIONAL FINITE ELEMENT METHOD
    Ma, Weimeng
    Wang, Jianjun
    PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2014, VOL 7A, 2014,
  • [29] Modeling of hydrodynamic bearing wear in rotor-bearing systems
    Machado, Tiago H.
    Cavalca, Katia L.
    MECHANICS RESEARCH COMMUNICATIONS, 2015, 69 : 15 - 23
  • [30] Finite Element Analysis and Multi-objective Optimization of Flexible Rotor-bearing System
    Jiang L.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2021, 55 : 327 - 334