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JOURNAL OF ZHEJIANG UNIVERSITY (ENGINEERING SCIENCE)
    
Self-sensing active magnetic bearing using Hilbert transform
YU Jie, ZHU Chang-sheng
College of Electrical Engineering, Zhejiang University, Hangzhou 310027, China
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Abstract  

A position estimation algorithm using Hilbert transform was proposed according to the accuracy and phase delay problem of the rotor position signal demodulator in former self-sensing active magnetic bearings. Comparing with former methods, the amplitude demodulation of the fundamental current ripple through the Hilbert transform contributes to better accuracy and less phase delay. The parallel processing field-programmable gate array (FPGA) was used to establish the rotor position estimator considering the requirement of multichannel real-time digital signal processing in self-sensing AMB system. The digital signal processor (DSP) was served as the position feedback controller of the system. The experiment was conducted on a four-DOF rigid rotor radial AMB platform, which showed that the estimated rotor position signal extracted by the FPGA module performed well both in linearity and real-time property. The stable operation of the four-DOF radial AMB within rotor speed range of 0-2 000 r/min was achieved.



Published: 01 April 2015
CLC:  TP 23  
Cite this article:

YU Jie, ZHU Chang-sheng. Self-sensing active magnetic bearing using Hilbert transform. JOURNAL OF ZHEJIANG UNIVERSITY (ENGINEERING SCIENCE), 2015, 49(4): 732-739.

URL:

http://www.zjujournals.com/eng/10.3785/j.issn.1008-973X.2015.04.018     OR     http://www.zjujournals.com/eng/Y2015/V49/I4/732


基于希尔伯特变换的自传感电磁轴承实现

针对以往自传感主动电磁轴承系统中存在的位移解调器精度不足、存在相位滞后等问题,提出利用希尔伯特变换的转子位移估计策略.相比以往方法,使用希尔伯特变换对电流纹波基频分量幅值的提取更精确,相位延迟更小.针对自传感电磁轴承系统需要多路信号实时处理的特点,利用现场可编程门阵列(FPGA)并行运算的特性保证了各自由度位移估计信号的时序同步,搭配浮点运算功能强大的数字信号处理器(DSP)实现了自传感电磁轴承系统的反馈控制器.在4自由度径向电磁轴承刚性转子系统平台上进行实验验证.实验结果表明,FPGA模块提取的转子位置估计信号具有良好的线性度和实时性,实现了4自由度径向电磁轴承在转速为0~2 000 r/min时的自传感稳定运行.

[1] SCHWEITZER G., MASLEN E. Magnetic bearings: theory, design, and application to rotating machinery [M]. [S. l.]: Springer, 2009.
[2] LEFANTE V S. Noncollocation in magnetic bearings for flexible rotors [D]. Charlottesville: University of Virginia, 1992.
[3] VISCHER D, BLEULER H. A new approach to sensorless and voltage controlled AMB’s based on network theory concepts [C]∥ Proceedings of the 2nd International Symposium on Magnetic Bearings. Tokyo: [s. n.], 1990: 301-306.
[4] VISCHER D, BLEULER H. Self-sensing active magnetic levitation [J]. IEEE Transactions on Magnetics, 1993, 29(2): 1267-1281.
[5] MATSUDA K, OKADA Y, TANI J. Self-sensing magnetic bearing using the principle of differential transformer [C]∥ Proceedings of the 2nd International Symposium on Magnetic Bearings. Kanazawa: [s. n.], 1996: 107-112.
[6] NOH M D, MASLEN E H. Self-sensing magnetic bearings using parameter estimation [J]. IEEE Transactions on Magnetics, 1997, 46(1): 45-50.
[7] YIM J S, KIM J H, SUL S K, et al. Sensorless position control of active magnetic bearings based on high frequency signal injection method [C]∥ Proceedings of the 18th Annual IEEE APEC. Miami Beach: [s. n.], 2003: 83-88.
[8] SCHAMMASS A, HERZOG R, BUEHLER P, et al. New results for self-sensing active magnetic bearings using modulation approach [J]. IEEE Transactions on Control Systems Technology, 2005, 13(4): 509-516.
[9] 王军, 徐龙祥. 磁悬浮轴承转子位移自检测系统研究[J]. 传感器技术, 2005, 24(3): 27-29.
WANG Jun, XU Long-xiang. Study on automation detection system of rotor displacement of self-sensing magnetic bearing [J]. Journal of Transducer Technology, 2005, 24(3): 27-29.
[10] 唐明,祝长生.基于占空比补偿的电磁轴承无传感器运行[J].浙江大学学报:工学版,2013,47(8): 1418-1423.
TANG Ming, ZHU Chang-sheng. Research of self-sensing active magnetic bearings based on duty cycle compensation [J]. Journal of Zhejiang University: Engineering Science, 2013, 47(8): 1418-1423.
[11] LI L, TADAHIKO S, AKIRA S. State feedback control for active magnetic bearings based on current change rate alone [J]. IEEE Transactions on Magnetics, 2004, 40(6): 3512-3517.
[12] VAN S G, NIEMANN A C, DU R C P. Evaluation of demodulation algorithms for robust self-sensing active magnetic bearings [J]. Sensors and Actuators A: Physical, 2013, 189: 441-450.
[13] NOH M D, MASLEN E H. Self-sensing magnetic bearings driven by a switching power amplier [D]. Charlottesville: University of Virginia, 1996.
[14] 唐明, 祝长生. 力扰动对无传感器电磁轴承位移解调的影响[J]. 浙江大学学报:工学版, 2013, 47(4): 698-704.
TANG Ming, ZHU Chang-sheng. Influence from force perturbation to position demodulation in self-sensing active magnetic bearing [J]. Journal of Zhejiang University: Engineering Science, 2013, 47(4): 698-704.
[15] TANG M, ZHU C S, YU J. Self-sensing active magnetic bearing using real-time duty cycle [J]. Journal of Zhejiang University: Science C, Computers and Electronics, 2013, 14(8): 600-611.
[16] NIEMANN A. Self-sensing algorithms for active magnetic bearings [D]. Potchefstroom: North-West University, 2008.
[17] 唐明. 径向4自由度主动电磁轴承系统的自传感运行研究-基础理论和关键技术[D]. 杭州:浙江大学, 2013.
TANG Ming. Investigation on the self-sensing operation of 4-DOF radial active magnetic bearings-basic theory and key technology [D]. Hangzhou: Zhejiang University, 2013.
[18] 胡广书. 数字信号处理:理论,算法与实现[M]. 北京: 清华大学出版社有限公司, 2003.
[19] MC C, JAMES H, THOMAS W P. A personal history of the Parks-McClellan algorithm [J]. Signal Processing Magazine, 2005, 22(2): 82-86.

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