Data-driven Protection of Transformers, Phase Angle Regulators, and Transmission Lines in Interconnected Power Systems
Pallav Kumar Bera

TL;DR
This paper discusses how machine learning can enhance the protection and fault detection of critical power system components like transformers, phase angle regulators, and transmission lines, addressing limitations of traditional methods.
Contribution
It introduces ML-based approaches tailored for complex fault detection and protection challenges in power systems, improving accuracy and reliability over conventional techniques.
Findings
ML methods improve fault detection accuracy
Enhanced protection of transformers and transmission lines
Addressed challenges of traditional protection techniques
Abstract
This dissertation highlights the growing interest in and adoption of machine learning (ML) approaches for fault detection in modern power grids. Once a fault has occurred, it must be identified quickly and preventative steps must be taken to remove or insulate it. As a result, detecting, locating, and classifying faults early and accurately can improve safety and dependability while reducing downtime and hardware damage. ML-based solutions and tools to carry out effective data processing and analysis to aid power system operations and decision-making are becoming preeminent with better system condition awareness and data availability. Power transformers, Phase Shift Transformers or Phase Angle Regulators, and transmission lines are critical components in power systems, and ensuring their safety is a primary issue. Differential relays are commonly employed to protect transformers,…
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Taxonomy
TopicsPower Systems Fault Detection · Islanding Detection in Power Systems · Power Systems and Technologies
