Dynamic support stiffness of motorized spindle bearings under high-speed rotation

被引:0
|
作者
Shengli Tian
Xingxin Zhao
Shaojiang Dong
机构
[1] Chongqing Jiaotong University,School of Mechantronics and Vehicle Engineering
[2] Chongqing Changjiang Bearing Co.,Chongqing Key Laboratory of Manufacturing Equipment Mechanism Design and Control
[3] Ltd.,undefined
[4] Chongqing Technology and Business University,undefined
关键词
High-speed motorized spindle; Bearings; High-speed loading; Dynamic support stiffness;
D O I
暂无
中图分类号
学科分类号
摘要
The rotor operating stiffness of high-speed motorized spindles (HSMSs) is key to machining accuracy. Because HSMSs are difficult to load due to their high speeds, a contact loading device was developed to test rotor operating stiffness. The dynamic support stiffness of the front/rear bearings (DSSB) is the main factor affecting the rotor operating stiffness. Two novel experimental schemes for measuring the DSSB are proposed: (1) indirect measurement—by analysing deformation displacements at two points on the external loading rod of the HSMS and (2) direct measurement—by eddy current sensors installed near the front/rear bearings. Based on the experimental device and two experimental schemes, the influences of working condition parameters on the DSSB were tested. The results show that the proposed experimental device and two experimental schemes can effectively and accurately measure rotor operating stiffness and DSSB at speeds of up to 30,000 rpm. However, because the tapered connection gap between the loading rod and rotor increases the measured deformation displacement, the DSSB measured by the indirect measurement scheme was relatively small. The DSSB decreases with speed and increases with radial force and working temperature. This study provides a new experimental basis for the quality inspection of finished HSMSs and the verification of theoretical bearing stiffness models.
引用
收藏
页码:2359 / 2367
页数:8
相关论文
共 50 条
  • [21] INCREASING THE ACCURACY OF ROTATION OF HIGH-SPEED SPINDLE UNITS ON ANTI-FRICTION BEARINGS
    DANILCHENKO, YM
    SOVIET ENGINEERING RESEARCH, 1987, 7 (07): : 61 - 63
  • [22] Thermal error modeling and compensation for a high-speed motorized spindle
    Yang, Jun
    Shi, Hu
    Feng, Bin
    Zhao, Liang
    Ma, Chi
    Mei, Xuesong
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2015, 77 (5-8): : 1005 - 1017
  • [23] Dynamic modelling and optimization design of spindle systems with high-speed ball bearings
    Zhang, Ya-Wei
    Jin, Xiang
    Li, Bei-Zhi
    Liang, Yue-Sheng
    Zhendong yu Chongji/Journal of Vibration and Shock, 2015, 34 (18): : 57 - 62
  • [24] Thermal Error Robust Modeling for High-speed Motorized Spindle
    Lei, Chunli
    Rui, Zhiyuan
    Liu, Jun
    Ren, Lina
    INTELLIGENT SYSTEM AND APPLIED MATERIAL, PTS 1 AND 2, 2012, 466-467 : 961 - 965
  • [25] Comprehensive Measurement and Evaluation System of High-speed Motorized Spindle
    Zhou, Da-Shuai
    Wu, Liang-sheng
    STROJARSTVO, 2010, 52 (05): : 535 - 541
  • [26] Thermal error modeling and compensation for a high-speed motorized spindle
    Jun Yang
    Hu Shi
    Bin Feng
    Liang Zhao
    Chi Ma
    Xuesong Mei
    The International Journal of Advanced Manufacturing Technology, 2015, 77 : 1005 - 1017
  • [27] Review on Lubrication and Sealing Technology of High-Speed Motorized Spindle
    Gao Y.
    Dai Y.
    Wang G.
    Li Z.
    Tao X.
    Recent Patents on Engineering, 2023, 17 (06) : 90 - 107
  • [28] Review and prospects on high-speed precision motorized spindle technology
    Xiong, WL
    Huang, HW
    Mi, HQ
    PROCEEDINGS OF THE CHINA ASSOCIATION FOR SCIENCE AND TECHNOLOGY, VOL 1, NO 1, 2004, : 226 - 230
  • [29] Centrifugal force induced dynamics of a motorized high-speed spindle
    Chen, Jenq-Shyong
    Hwang, Yii-Wen
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2006, 30 (1-2): : 10 - 19
  • [30] Block adaptive backstepping control for a high-speed motorized spindle
    Shan, Wen-Tao
    Chen, Xiao-An
    Zhendong yu Chongji/Journal of Vibration and Shock, 2015, 34 (23): : 99 - 105