Thermal Analysis of Power Transformers Under Geomagnetically Induced Current

被引:6
作者
Akbari, Milad [1 ]
Rezaei-Zare, Afshin [1 ]
机构
[1] York Univ, Dept Elect Engn & Comp Sci, Toronto, ON M3J 1P3, Canada
关键词
Oil insulation; Circuit faults; Power transformer insulation; Finite element analysis; Geomagnetic storms; Computational fluid dynamics; Computational fluid dynamics (CFD); finite element method; geomagnetic disturbance (GMD); geomagnetically induced current (GIC); hot-spot temperature; transformer thermal modeling; HEAT-TRANSFER; SINGLE-PHASE; SIMULATION; MODEL; PERFORMANCE; VALIDATION; PREDICTION; RADIATORS; FLOW;
D O I
10.1109/TPWRD.2023.3303106
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Temperature distribution in the power transformers is investigated in this study under Geomagnetically Induced Current (GIC) conditions. Thermal stress can significantly reduce the insulation life, and in the case of excessive hot spot temperature (HST), catastrophic failure of transformers is likely, as happened in the past Geomagnetic Disturbance (GMD) events. Although a few reports emphasize the impact of GIC on the local heating within the transformers, especially in the structural parts, the effect of GIC on the thermal condition of transformers has not been investigated profoundly. This article studies the power transformer HST during the GIC. Since finding stray losses under GIC conditions is challenging, a hybrid approach, including a topological transformer model and 3D finite element method (FEM), is implemented. The detailed topological transformer model is utilized in the EMTP time-domain simulations to determine the harmonic currents at different GIC levels. Additionally, FEM is employed to calculate the temperature distribution within the transformer. The simulation results reveal that the structural parts are saturated with low GIC magnitudes, resulting in high stray losses and local hot spot heating in those areas. Furthermore, the tank can reach high temperatures at mid-GIC levels. These results clearly show that the transformer structural parts are highly vulnerable under severe GIC situations.
引用
收藏
页码:4114 / 4121
页数:8
相关论文
共 36 条
[1]   Air Gap Inductance Calculation for Transformer Transient Model [J].
Akbari, Milad ;
Rezaei-Zare, Afshin ;
Cheema, Muhammad Ali Masood ;
Kalicki, Tomasz .
IEEE TRANSACTIONS ON POWER DELIVERY, 2021, 36 (01) :492-494
[2]  
[Anonymous], 2016, Cigre WG A2.38
[3]  
[Anonymous], 2018, IEC 60076-7
[4]   System-Wide Case Study Assessment of Transformer Heating Due to Geomagnetic Disturbances [J].
Dehghanian, Pooria ;
Shetye, Komal. S. ;
Davis, Katherine R. ;
Overbye, Thomas J. .
2019 51ST NORTH AMERICAN POWER SYMPOSIUM (NAPS), 2019,
[5]   Hundred years of experience in the dynamic thermal modelling of power transformers [J].
Djamali, Mohammad ;
Tenbohlen, Stefan .
IET GENERATION TRANSMISSION & DISTRIBUTION, 2017, 11 (11) :2731-2739
[6]   Thermal analysis of cast-resin dry-type transformers [J].
Eslamian, M. ;
Vahidi, B. ;
Eslamian, A. .
ENERGY CONVERSION AND MANAGEMENT, 2011, 52 (07) :2479-2488
[7]   Thermal degradation assessment of Kraft paper in power transformers insulated with natural esters [J].
Fernandez, Inmaculada ;
Delgado, Fernando ;
Ortiz, Felix ;
Ortiz, Alfredo ;
Fernandez, Cristina ;
Renedo, Carlos J. ;
Santisteban, Agustin .
APPLIED THERMAL ENGINEERING, 2016, 104 :129-138
[8]  
Geomagnetic P., 2013, Transformer Thermal Impact Assessment, V3, P1
[9]   A Monitoring Method for Average Winding and Hot-Spot Temperatures of Single-Phase, Oil-Immersed Transformers [J].
Gezegin, Cenk ;
Ozgonenel, Okan ;
Dirik, Hasan .
IEEE TRANSACTIONS ON POWER DELIVERY, 2021, 36 (05) :3196-3203
[10]   Prediction and evaluation of the cooling performance of radiators used in oil-filled power transformer applications with non-direct and direct-oil-forced flow [J].
Kim, Min-gu ;
Cho, Sang Moon ;
Kim, Joong-Kyoung .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2013, 44 :392-397