Journal of Modern Power Systems and Clean Energy

ISSN 2196-5625 CN 32-1884/TK

Improved Subsynchronous Oscillation Parameter Identification with Synchrophasor Based on Matrix Pencil Method in Power Systems
Author:
Affiliation:

1.School of Electrical Engineering, Beijing Jiaotong University, Beijing 100044, China
2.Department of Electrical and Computer Engineering, University of Denver, Denver, USA

Fund Project:

This work was supported by National Natural Science Foundation of China(No. 52077004).

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    Abstract:

    The subsynchronous oscillations (SSOs) related to renewable generation seriously affect the stability and safety of the power systems. To realize the dynamic monitoring of SSOs by utilizing the high computational efficiency and noise-resilient features of the matrix pencil method (MPM), this paper proposes an improved MPM-based parameter identification with synchrophasors. The MPM is enhanced by the angular frequency fitting equations based on the characteristic polynomial coefficients of the matrix pencil to ensure the accuracy of the identified parameters, since the existing eigenvalue solution of the MPM ignores the angular frequency conjugation constraints of the two fundamental modes and two oscillation modes. Then, the identification and recovery of bad data are proposed by utilizing the difference in temporal continuity of the synchrophasors before and after noise reduction. The proposed parameter identification is verified with synthetic, simulated, and actual measured phase measurement unit (PMU) data. Compared with the existing MPM, the improved MPM achieves better accuracy for parameter identification of each component in SSOs, better real-time performance, and significantly reduces the effect of bad data.

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History
  • Received:December 02,2022
  • Revised:February 24,2023
  • Adopted:
  • Online: January 22,2024
  • Published: