全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

基于ADALINE的有源电力滤波器预测电流控制策略(英文)

, PP. 77-84

Keywords: 三相有源电力滤波器,预测控制,自适应线性神经元,空间矢量脉宽调制

Full-Text   Cite this paper   Add to My Lib

Abstract:

为有效补偿有源电力滤波器(APF)的控制延时,提出一种基于自适应线性神经元(ADALINE)的APF预测电流控制策略。该策略通过ADALINE预测下一控制周期的参考电流,根据两相静止坐标系下APF系统模型确定参考电压,利用空间矢量脉宽调制(SVPWM)方法,使APF输出电流快速、准确地跟踪参考电流。仿真与APF样机上的实际运行结果表明,和采用传统无预测算法的SVPWM方法相比,采用本文提出的预测电流控制策略,APF的稳态补偿精度和动态跟踪性能均明显提高。

References

[1]  Peng F Z. Applications issues of active power filters
[2]  [J]. IEEE Industry Applications Magazine, 1998, 4(5): 212-230.
[3]  [J]. IEEE Transactions on Power Apparatus and Systems, 1985, 104(9): 2555-2563.
[4]  Shoji F, Shunichi S. Adaptive signal processing based control of active power filters
[5]  Jee H P, Dong R S, Dong W K. Internal model control of active power filter using resonance model
[6]  [C]. IEEE International Symposium, Pusan, Korea, 2001.
[7]  Malesani L, Mattavelli P, Buso S. Robust dead-beat current control for PWM rectifier and active filters
[8]  [J]. IEEE Transactions on Industry Applications, 1999, 35(3): 613-620.
[9]  Rodriguez J, Pontt J, Cesar A, et al. Predictive current control of a voltage source inverter
[10]  [J]. IEEE Transac- tions on Industrial Electronics, 2007, 54(1): 495-502.
[11]  [M]. Beijing: China Machine Press, 1998.
[12]  [M]. Harbin: Harbin Industrial University Press, 2003.
[13]  Diaffar O A, Patrice W, Jean M, et al. A unified artificial neural network architecture for active power filter
[14]  [M]. Beijing: National Defence Industry Press, 2006.
[15]  Nishiba K, Konishi Y, Nakao M. Current control implementation with deadbeat algorithm for threephase current-source active power filter
[16]  [J]. IEE Proceeding of Electric Power Application, 2002, 149(4): 275-282.
[17]  [J]. Transactions of China Electrotechnical Society, 2002.
[18]  Ortmeyer T H, Chakravarthi K R, Mahmoud A. The effects of power system harmonics on power system equipment and loads
[19]  Luo An. Power grid harmonics suppression and reactive power compensation technique and equipment
[20]  [M]. Beijing: Chinese Power Press, 2005.
[21]  [C]. IEEE Industrial Application Society Annual Meeting, San Diego, 1996.
[22]  Seung G J, Myung H W. DSP-based active power filter with predictive current control
[23]  [J]. IEEE Transactions on Industrial Electronics, 1997, 44(3): 329-336.
[24]  Marks H J, Green T C. Predictive transient-following control of shunt and series active power filters
[25]  [J]. IEEE Transactions on Power Electronics, 2002, 17(4): 574-584.
[26]  Zhang Chongwei, Zhang Xing. PWM rectifier and its control
[27]  [M]. Beijing: China Machine Press, 2002.
[28]  Zeng J, Ni Y, Diao Q, et al. Current controller for active power filter based on optimal voltage vector
[29]  [J]. IEE Proceedings on Generation Transaction and Distribution, 2001, 128(2): 111-116.
[30]  Zhang B. The general theory of instantaneous reactive power of three phase circuit
[31]  [J]. Proceedings of the CSU-EPSA, 1998, 10(4): 55-59.
[32]  Peng Jianchun, Huang Chun. Design of intelligent PID control for static reactive power compensation
[33]  [J]. Journal of Hunan University (Natural Science), 1999, 26(5): 50-55.
[34]  Wang Zhaoan, Yang Jun, Liu Jinjun. Harmonics elimination and reactive power compensation
[35]  Liu H, Xiao X N, Xu Y H. Study on the simplified algorithm of space vector PWM
[36]  [C]. Proceedings of IEEE the 5th International Conference on Power Electronics and Drive Systems, Singapore, 2003: 877-881.
[37]  Yu Changguan. Modern control theory
[38]  [J]. IEEE Transactions on Industrial Electronics, 2007, 54(1): 61-75.
[39]  Ruan Xiaogang. Neurocomputing: simulation of brain function on cell-level
[40]  Li Jiang, Sun Haishun, Cheng Shijie, et al. Prediction control of active filter based on the grey theory

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133