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Detection and localization of fault in DC microgrid using discrete Teager energy and generalized least square method.

Authors :
Barik, Subrat Kumar
Nanda, Smrutimayee
Samal, Padarbinda
Senapati, Rudranarayan
Source :
COMPEL. 2024, Vol. 43 Issue 1, p227-246. 20p.
Publication Year :
2024

Abstract

Purpose: This paper aims to introduce a new fault protection scheme for microgrid DC networks with ring buses. Design/methodology/approach: It is well recognized that the protection scheme in a DC ring bus microgrid becomes very complicated due to the bidirectional power flow. To provide reliable protection, the differential current signal is decomposed into several basic modes using adaptive variational mode decomposition (VMD). In this method, the mode number and the penalty factor are chosen optimally by using arithmetic optimization algorithm, yielding satisfactory decomposition results than the conventional VMD. Weighted Kurtosis index is used as the measurement index to select the sensitive mode, which is used to evaluate the discrete Teager energy (DTE) that indicates the occurrence of DC faults. For localizing cable faults, the current signals from the two ends are used on a sample-to-sample basis to formulate the state space matrix, which is solved by using generalized least squares approach. The proposed protection method is validated in MATLAB/SIMULINK by considering various test cases. Findings: DTE is used to detect pole-pole and pole-ground fault and other disturbances such as high-impedance faults and series arc faults with a reduced detection time (10 ms) compared to some existing techniques. Originality/value: Verification of this method is performed considering various test cases in MATLAB/SIMULINK platform yielding fast detection timings and accurate fault location. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03321649
Volume :
43
Issue :
1
Database :
Academic Search Index
Journal :
COMPEL
Publication Type :
Periodical
Accession number :
175725262
Full Text :
https://doi.org/10.1108/COMPEL-02-2023-0062