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End-to-end microgrid protection using distributed data-driven methods

Yue Chen, Soham Chakraborty, Ahmed S. Zamzam, Jing Wang

2025Applied Energy10 citationsDOIOpen Access PDF

Abstract

This paper introduces an end-to-end microgrid protection framework that offers real-time system monitoring, fault-related decision making, and circuit breaker control. This is achieved through the design of distributed data-driven techniques based on the support vector machine method, where each relay is responsible for distributed data collection, fault detection, fault localization, and fault isolation. Local communication is established among neighboring relays, fostering cooperative fault localization and isolation. This decentralized design not only reduces the computational and communication requirements but also enables the adaptability of each relay under varying operational dynamics. The proposed end-to-end protection framework was validated using MATLAB/Simulink simulations on a 100 % renewable microgrid, achieving an accuracy of 93.1 % with response time of 0.0523 s, in protecting against a range of fault scenarios that are characterized by various types, locations, impedances, load conditions, photovoltaic power levels, and microgrid operating modes. • A comprehensive end-to-end microgrid protection solution that offers a range of functionalities—from data collection to fault detection, localization, and isolation. • Distributed support vector machine-based algorithms for fault detection and localization, featuring decentralized relay decision making and efficient neighboring relay coordination for accurate and timely system protection. • Demonstration of the protection framework on a 100 % renewable microgrid in MATLAB/Simulink, achieving an accuracy of 93.1 % with response time of 0.0523 s.

Topics & Concepts

MicrogridDistributed generationComputer scienceReliability engineeringEngineeringElectrical engineeringRenewable energyPower Systems Fault DetectionIslanding Detection in Power SystemsSmart Grid Security and Resilience