Experimental investigation of fundamental combustion characteristics of transformer oil pool fires

To investigate the combustion characteristics of transformer oil pool fires beneath large-scale converter transformers, an experimental platform was established using KI25# transformer oil. The effects of pool diameter, initial oil thickness, and initial oil temperature on burning rate, plume behavior, and combustion development were systematically analyzed. The results show that transformer oil pool fires undergo four stages: initial growth, steady burning, boiling combustion, and extinction. The burning rate is mainly controlled by pool diameter and oil thickness, while initial oil temperature has a limited effect on the average burning rate during the full development phase. Oil thickness shows a nonlinear influence on burning rate; for a 40 cm diameter pool, the 5 cm oil layer gives a burning rate of 14.92 g/(m2·s), which is higher than that of the 3 cm layer but lower than that of the 9 cm layer. The burning rate increases with pool diameter and gradually approaches a stable value, indicating a clear scale effect under the investigated conditions. Based on experimental data under different oil thicknesses, thickness-dependent burning-rate correlations were developed and compared with classical pool fire models, thereby supplementing the Blinov classical model with fundamental data for transformer oil in the optically thin regime. These results provide basic data for combustion intensity prediction, fire hazard assessment, and fire protection design of oil-immersed transformers.

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Publication Details

Journal
Energy Sources Part A Recovery Utilization and Environmental Effects
Published
2026-08-27
DOI
https://doi.org/10.1080/15567036.2026.2723554
Primary Topic
Fire dynamics and safety research
Type
article
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article

Experimental investigation of fundamental combustion characteristics of transformer oil pool fires

Peng Chen, Haoyou Zhao, Jun Wu, Zhihao Lin et al.
Energy Sources Part A Recovery Utilization and Environmental Effects
Fire dynamics and safety research
article

Experimental investigation of fundamental combustion characteristics of transformer oil pool fires

Peng Chen, Haoyou Zhao, Jun Wu, Zhihao Lin, Zhizhen Zhang, Qiuyue Wang
article en

Abstract

To investigate the combustion characteristics of transformer oil pool fires beneath large-scale converter transformers, an experimental platform was established using KI25# transformer oil. The effects of pool diameter, initial oil thickness, and initial oil temperature on burning rate, plume behavior, and combustion development were systematically analyzed. The results show that transformer oil pool fires undergo four stages: initial growth, steady burning, boiling combustion, and extinction. The burning rate is mainly controlled by pool diameter and oil thickness, while initial oil temperature has a limited effect on the average burning rate during the full development phase. Oil thickness shows a nonlinear influence on burning rate; for a 40 cm diameter pool, the 5 cm oil layer gives a burning rate of 14.92 g/(m2·s), which is higher than that of the 3 cm layer but lower than that of the 9 cm layer. The burning rate increases with pool diameter and gradually approaches a stable value, indicating a clear scale effect under the investigated conditions. Based on experimental data under different oil thicknesses, thickness-dependent burning-rate correlations were developed and compared with classical pool fire models, thereby supplementing the Blinov classical model with fundamental data for transformer oil in the optically thin regime. These results provide basic data for combustion intensity prediction, fire hazard assessment, and fire protection design of oil-immersed transformers.

Energy Sources Part A Recovery Utilization and Environmental EffectsVol. 48(1)
Beijing Institute of Technology (CN), China University of Mining and Technology (CN), State Key Laboratory of Explosion Science and Safety Protection (CN)
Affordable and clean energy
Openalex Percentile: Top 11%
Fire dynamics and safety research
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