Microgrid protection using iterative filtering

被引:2
作者
Gadanayak, Debadatta Amaresh [1 ]
Mallick, Ranjan Kumar [1 ]
机构
[1] Siksha O Anusandhan Univ, Dept Elect & Elect Engn, Bhubaneswar 751030, Odisha, India
关键词
extreme learning machine; intrinsic mode functions; inverter-interfaced distribution generation; iterative filtering; mathematical morphology; Teager energy operator; EXTREME LEARNING-MACHINE; MODE DECOMPOSITION; FAULT-DIAGNOSIS; TRAVELING-WAVE; SCHEME; REGRESSION; SYSTEMS;
D O I
10.1002/2050-7038.12207
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper proposes an intelligent, nonpilot protection strategy for inverter-dominated microgrids using iterative filtering-based empirical mode decomposition (IFEMD) and extreme learning machine. The instantaneous frequency envelope (IFE) and the instantaneous Teager energy envelope (ITEE) of the most informative intrinsic mode function (MIIMF) obtained through processing the local current signal by IFEMD is used for fault detection and fault phase identification. But the disadvantage of IFEMD, like any other variant of empirical mode decomposition (EMD), is that for useful decomposition, it requires at least three cycles of data samples. For the above reason, a mathematical morphology-based dynamic event detection scheme is devised to pinpoint the fault inception instants which allows extraction of half-cycle postfault current IFE and ITEE. A fewer number of inputs to the classifier make the classification task faster and less computationally complex. The proposed scheme is extensively validated for both arcing and nonarcing faults with wide variations in operating parameters for different topologies and modes of operations of a standard microgrid model.
引用
收藏
页数:22
相关论文
共 38 条
[1]  
Azmy A. M., 2013, IEEE INT C SMART ENE, P1
[2]   Development of adaptive protection scheme for distribution systems with high penetration of distributed generation [J].
Brahma, SM ;
Girgis, AA .
IEEE TRANSACTIONS ON POWER DELIVERY, 2004, 19 (01) :56-63
[3]   Fault Location in Power Distribution System With Penetration of Distributed Generation [J].
Brahma, Sukumar M. .
IEEE TRANSACTIONS ON POWER DELIVERY, 2011, 26 (03) :1545-1553
[4]   A review on issues and approaches for microgrid protection [J].
Brearley, Belwin J. ;
Prabu, R. Raja .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 67 :988-997
[5]   A Differential Sequence Component Protection Scheme for Microgrids With Inverter-Based Distributed Generators [J].
Casagrande, E. ;
Woon, W. L. ;
Zeineldin, H. H. ;
Svetinovic, D. .
IEEE TRANSACTIONS ON SMART GRID, 2014, 5 (01) :29-37
[6]  
Cicone A., 2018, ARXIV PREPRINT ARXIV
[7]   Adaptive local iterative filtering for signal decomposition and instantaneous frequency analysis [J].
Cicone, Antonio ;
Liu, Jingfang ;
Zhou, Haomin .
APPLIED AND COMPUTATIONAL HARMONIC ANALYSIS, 2016, 41 (02) :384-+
[8]   Preprocessing of distance and directional overcurrent relays coordination problem considering changes in network topology [J].
Damchi, Yaser ;
Sadeh, Javad ;
Mashhadi, Habib Rajabi .
INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2016, 26 (01) :32-48
[9]   Detection, classification, and location of faults on grid-connected and islanded AC microgrid [J].
Dharmapandit, Okram ;
Patnaik, Rajesh Kumar ;
Dash, Pradipta Kishore .
INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2017, 27 (12)
[10]   Microgrid protection using system observer and minimum measurement set [J].
Esreraig, Mohamed ;
Mitra, Joydeep .
INTERNATIONAL TRANSACTIONS ON ELECTRICAL ENERGY SYSTEMS, 2015, 25 (04) :607-622