TDSF-Based Evaluation of Transformer Interactions with VCB, Cable Length, and Neutral Grounding

Conference Paper (2025)
Author(s)

Casimiro Alvarez-Mariño (Spanish Association for Transformers Innova-tion)

Xose M. Lopez-Fernandez (University of Vigo)

Marjan Popov (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Luis Rouco (Universidad Pontificia Comillas)

Research Group
Intelligent Electrical Power Grids
DOI related publication
https://doi.org/10.23919/ARWtr66130.2025.11261320 Final published version
More Info
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Publication Year
2025
Language
English
Research Group
Intelligent Electrical Power Grids
Publisher
IEEE
ISBN (print)
978-1-6654-5764-4
ISBN (electronic)
978-84-09-77194-3
Event
8th Advanced Research Workshop on Transformers, ARWtr 2025 (2025-10-12 - 2025-10-15), Baiona, Spain
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Abstract

This paper presents a TDSF-based evaluation of dielectric severity in transformer windings, focusing on transient overvoltages induced by cable–transformer interactions during vacuum circuit breaker (VCB) closing. Unlike prior approaches limited to terminal voltages, this study investigates the highest both spatial and temporal dielectric stress across all combinations of winding nodes and their reference to ground. A hybrid white–black box transformer model implemented in ATP/EMTP is presented and used for high-frequency transient analysis within the transformer. Three case studies on a 50 MVA single-phase, multi-winding transformer validate the model and assess the impact of cable length and neutral grounding resistance. Results show that certain cable lengths increase dielectric stress due to resonance effects, though without exceeding critical thresholds. In contrast, grounding conditions at the LV terminal significantly affect the vulnerability of the winding neutral point. The findings underscore the effectiveness of TDSF-based evaluation in identifying critical stress locations and supporting insulation coordination strategies.

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