A Four-Phase Four-Leg Power Electronics Converter for Active Magnetic Bearing Drive

被引:0
|
作者
Hu Z. [1 ]
Jiang D. [1 ]
Sun H. [1 ]
机构
[1] State Key Laboratory of Advanced Electromagnetic Engineering and Technology, Huazhong University of Science and Technology, Wuhan
关键词
Current differential control; Four-phase four-leg; Magnetic bearing; Power electronics converter;
D O I
10.19595/j.cnki.1000-6753.tces.190912
中图分类号
学科分类号
摘要
Power amplifier is a key component in active magnetic bearing (AMB) system. Based on the relationship of four winding-currents in the 8-pole radial bearing, this paper analyzes the feasibility of a four-phase four-leg power electronic converter. The common phase-leg used in some topologies of AMB drive has been removed in the proposed novel topology. Only four phase-legs are required to control four winding-currents, which realizes the optimal use of the device and reduces the cost and converter volume. Moreover, the control principle and modulation mode of the novel converter have been analyzed. The two sets of winding current control adopt the opposite carrier to reduce the winding current ripple. According to the influence analysis of inductance asymmetry on current control, a solution was proposed using PI controllers with different parameters. Meanwhile, the influence on position control was further analyzed when the inductance asymmetry cannot be fully compensated. The simulations were carried out, and the established prototype was tested on a four-axis AMB test rig. The results show that the topology can meet the control requirements in AMB drive, and can effectively reduce the cost and volume of the converter. © 2020, Electrical Technology Press Co. Ltd. All right reserved.
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收藏
页码:4325 / 4335
页数:10
相关论文
共 21 条
  • [1] Maslen E H, Schweitzer G, Bleuler H, Et al., Magnetic bearings-theory, design, and application to rotating machinery, (2009)
  • [2] Zhang Weiyuan, Zhu Huangqiu, Yuan Ye, Study on key technologies and applications of magnetic bearings, Transactions of China Electrotechnical Society, 30, 12, pp. 12-20, (2015)
  • [3] Yu Zhiqiang, Sun Xiaoyun, Qiu Qingquan, Et al., Levitation test and rotation experiment of radial-type superconducting flywheel energy storage system prototype with external motor, Transactions of China Electrotechnical Society, 34, 10, pp. 2166-2175, (2019)
  • [4] Zhang Tao, Liu Xinfeng, Mo Lihong, Et al., Modeling and control of magnetic suspension high-speed motor, Electric Machines and Control, 22, 4, pp. 98-104, (2018)
  • [5] Jiang Hao, Su Zhenzhong, Wang Dong, Dynamic modeling of magnetic bearing-rotor system on moving platform, Transactions of China Electrotechnical Society, 34, 23, pp. 4880-4889, (2019)
  • [6] Yu Jie, Zhu Changsheng, Yu Zhonglei, Self-sensing active magnetic bearing rotor position estimation strategy considering eddy current, Transactions of China Electrotechnical Society, 33, 9, pp. 1946-1956, (2018)
  • [7] Zhou Jie, Deng Zhiquan, Li Kexiang, Et al., Digital one-cycle control algorithm with compensation of time delay for switching power amplifier in magnetic suspension bearings, Transactions of China Elec-trotechnical Society, 33, 3, pp. 652-661, (2018)
  • [8] Zhang Guangming, Chen Chun, Mei Lei, Et al., The future and development of power amplifier for magnetic bearings, Small & Special Electrical Machines, 40, 3, pp. 73-76, (2012)
  • [9] (2010)
  • [10] Carabelli S, Maddaleno F, Muzzarelli M., High-efficiency linear power amplifier for active magnetic bearings, IEEE Transactions on Industrial Electro-nics, 47, 1, pp. 17-24, (2000)