Dynamic Synchrophasor Estimator Considering Frequency Deviation

被引:0
|
作者
Li W. [1 ]
Zhang G. [1 ]
Chen M. [1 ]
Zhong H. [1 ]
Geng Y. [1 ]
机构
[1] State Key Laboratory of Electrical Insulation and Power Equipment, Xi'an Jiaotong University, Xi'an
关键词
Dynamic synchrophasor; Frequency detecting; Frequency deviation; Rate of change of frequency;
D O I
10.19595/j.cnki.1000-6753.tces.L90163
中图分类号
学科分类号
摘要
Many reasons, such as power system load changes, sub-synchronous resonance and so on, will cause the system frequency to deviate from the nominal frequency of the system. The maximum frequency deviation specified in IEEE standard C37.118.1 and the latest revised C37.118.1a can reach 5Hz and larger frequency deviation will cause Taylor-Fourier to produce serious analysis errors. This paper proposed a dynamic synchronous phasor estimator considering frequency deviation. In this estimator, multiple discrete frequencies were generated at fixed frequency intervals on both sides of the nominal frequency, and then the corresponding dynamic filters were generated offline based on these frequencies, and the filter coefficients were saved to the memory for use during online operation. When the algorithm was running, Taylor-Fourier was used as a frequency detector to predict the signal frequency, and the closest discrete frequency was selected according to the predicted frequency. Then, the corresponding filter was found through the lookup table method to analyze the input signal and accurate measurement of synchronous phasor was realized under the frequency deviation case. Finally, the proposed estimator was tested through simulation and actual signal data. Test results show that the estimator can estimate the synchrophasor, frequency and rate of change of frequency under frequency deviation conditions. © 2021, Electrical Technology Press Co. Ltd. All right reserved.
引用
收藏
页码:4060 / 4069
页数:9
相关论文
共 22 条
  • [1] Wang M, Sun Y., A practical, precise method for frequency tracking and phasor estimation, IEEE Transactions on Power Delivery, 19, 4, pp. 1547-1552, (2004)
  • [2] Jin Tao, Chen Yiyang, Duan Xiaohua, Et al., Research on synchronous phasor measurement algorithm of power system based on improved DFT, Transactions of China Electrotechnical Society, 32, 17, pp. 1-10, (2017)
  • [3] Frigo G, Dervikadi A, Paolone M., Reduced leakage synchrophasor estimation: hilbert transform plus interpolated DFT, IEEE Transactions on Instrumentation and Measurement, 68, 10, pp. 3468-3483, (2019)
  • [4] XuSudi, Liu Hao, Bi Tianshu, Et al., A high accuracy phasor estimation algorithm for phasor measurement units calibrator, Transactions of China Electrotechnical Society, 35, 2, pp. 372-382, (2020)
  • [5] Serna J A, dela O., Dynamic phasor estimates for power system oscillations and transient detection, Power Engineering Society General Meeting, (2007)
  • [6] Serna J A, dela O., Dynamic phasor estimates for power system oscillations, IEEE Transactions on Instrumentation & Measurement, 56, 5, pp. 1648-1657, (2007)
  • [7] Garza M A P, Antonio D L O S J., Dynamic phasor estimates through maximally flat differentiators, 2008 IEEE Power and Energy Society General Meeting-Conversion and Delivery of Electrical Energy in the 21st Century, pp. 1-8, (2008)
  • [8] Garza M A P, Serna J A, dela O., Dynamic phasor and frequency estimates through maximally flat differentiators, IEEE Transactions on Instrumentation & Measurement, 59, 7, pp. 1803-1811, (2010)
  • [9] Garza M A P, Serna J A, dela O., Polynomial implementation of the taylor-fourier transform for harmonic analysis, IEEE Transactions on Instrumentation & Measurement, 63, 12, pp. 2846-2854, (2014)
  • [10] Liu Jiebo, Huang Chun, Jiang Yaqun, Et al., Dynamic phasor estimator based on strong tracking Taylor-Kalman filter, Transactions of China Electrotechnical Society, 33, 2, pp. 433-441, (2018)