DocumentCode
33084
Title
Minimal Invasive Equivalent Grid Impedance Estimation in Inductive–Resistive Power Networks Using Extended Kalman Filter
Author
Hoffmann, Nico ; Fuchs, Friedrich Wilhelm
Author_Institution
Inst. of Power Electron. & Electr. Drives, Christian-Albrechts-Univ. of Kiel, Kiel, Germany
Volume
29
Issue
2
fYear
2014
fDate
Feb. 2014
Firstpage
631
Lastpage
641
Abstract
Real-time estimation of the equivalent grid impedance and the equivalent grid voltage seen from a power converter connected to the public electric distribution network by means of extended Kalman filter is addressed. The theoretical background of the extended Kalman filter used for equivalent grid impedance estimation is introduced. Practical aspects like the use of the filter in an environment with highly distorted voltage waveforms, the tuning of the noise covariance matrices, and the implementation on a laboratory system are discussed. The theoretical analysis is verified on a 22-kW test-bench where a grid impedance emulator is used to simulate grid impedance steps in the laboratory environment. The proposed extended Kalman filter is designed to utilize the noise that is already present at the connection point of the power converter to overcome the need of active disturbance injection to estimate the equivalent grid impedance. Thus, electrical equipment connected close to the grid-connected converter is only affected marginally by the equivalent grid impedance estimation technique.
Keywords
Kalman filters; covariance matrices; power convertors; power grids; power system state estimation; active disturbance injection; equivalent grid impedance estimation; equivalent grid voltage; extended Kalman filter; grid impedance emulator; inductive-resistive power networks; noise covariance matrices; power 22 kW; power converter; public electric distribution network; real time estimation; Current measurement; Impedance; Noise; Observers; Prediction algorithms; Vectors; Voltage measurement; Active rectifier; Kalman-filter; grid impedance estimation; nonlinear observer; parameter estimation;
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2013.2259507
Filename
6507342
Link To Document