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End-To-End Decentralized Transmission Line Protection in IBR-Dominated Weak Grids Using Interpretable Data-Driven Methods: Article No. 112007

  • Abu Shouaib Hasan
  • , Soham Chakraborty
  • , Jing Wang

Research output: Contribution to journalArticlepeer-review

Abstract

Traditional transmission line protection relies on predictable synchronous-based fault signatures, which frequently fail under the non-standard, current-limited fault characteristics of Inverter-Based Resources (IBRs). This study investigates how to achieve secure, communication-free fault isolation in IBR-dominated weak grids without relying on opaque, computationally heavy "black-box" machine learning algorithms. To address this, we propose a novel, standalone, and inherently interpretable data-driven protection framework. Unlike centralized methods requiring multi-terminal communication, this decentralized approach relies solely on local measurements using a hierarchical linear-kernel Support Vector Machine (SVM). The methodology decomposes the protection task into four sequential stages that mimic traditional protection elements: fault detection and fault direction identification, fault type classification, zone classification, and location estimation. This multi-stage architecture allows for specialized feature engineering at each stage, combining high computational efficiency with logic traceability. The framework's end-to-end performance was validated via C-code and PSCAD/EMTDC co-simulation, utilizing a real-world utility network and an OEM black-box IBR model. The proposed relay achieves 97.2% overall accuracy and provides a reliable trip decision within a 2.5-cycle window. The results confirm 100% accuracy in fundamental fault detection, reliable zone selectivity across low to moderate fault resistances, and robust security against non-fault transients, proving its immediate viability for integration into commercial numerical relays.
Original languageAmerican English
Number of pages15
JournalInternational Journal of Electrical Power and Energy Systems
Volume181
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5D00-101561

Keywords

  • co-simulation
  • decentralized decision
  • end-to-end protection
  • fault detection
  • fault isolation
  • fault localization
  • interpretable
  • linear kernel
  • SVM
  • transmission line protection

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