Analysis of the Mechanical Stability of Power Transformer Windings Considering the Influence of Temperature Field
Abstract
:1. Introduction
2. Theoretical Model of Transformer Windings
2.1. Theoretical Modeling of Transformer Electromagnetic Fields
2.2. Theoretical Modeling of Transformer Heat-Flow Field
3. Transformer Mechanical Stability Analysis
3.1. Transformer Winding Current Calculation Model
3.2. Finite Element Modeling and Analysis of Transformer Electromagnetic Force Fields
- (1)
- The model retains only the core, windings, and tank structure.
- (2)
- The oil ducts between the windings are neglected, and each phase winding is simplified to a hollow cylindrical structure.
- (3)
- The cooling fin structures are ignored, with only the oil inlet and outlet retained. Other components on the surface of the tank are neglected, as well as the thickness of the tank walls.
- (4)
- The core is treated as a whole, disregarding its laminated silicon steel structure.
3.3. Mechanical Stability of Transformers
- (1)
- Mean hoop compressive stress
- (2)
- Radial bending stress
- (3)
- Free buckling critical stress
- (4)
- Compressive stress on radial spacers
- (5)
- Axial bending stress
4. Mechanical Stability Analysis of Power Transformer Windings by Counting and Temperature Field
4.1. Transformer Heat-Flow Steady-State Field Calculations and Their Experimental Validation
4.2. Transformer Heat-Flow Transient Field Calculations and Winding Hot Spot Temperature Fitting
4.3. Calculation and Analysis of Mechanical Stability Margins of Power Transformer Windings Taking into Account Temperature Field
5. Conclusions
- Design more experimental conditions to verify the model more comprehensively and universally. Specifically, increase more load rates and carry out related experiments at various ambient temperatures.
- Design a reasonable method for a transient temperature rise test of transformer windings. Due to the short transient time and small transient temperature change, there is no low-cost and high-precision method to measure the transient temperature rise in transformer windings. This is an urgent problem to be solved to study the influence of transformer short-circuit temperature rise on the mechanical stability of transformer windings.
- Accurately measure the influence of temperature on the yield strength and elastic modulus of transformer windings. Subject to the experimental conditions of material mechanics, the relationship among winding yield strength, elastic modulus, and temperature used in this paper refers to the existing articles. In the future, targeted measurements should be carried out for the target transformer used to more accurately evaluate the influence of temperature on winding mechanical stability.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Components | Parameters | Value |
---|---|---|
110 Kv Voltage Source | Nominal voltage | 110 kV |
Nominal frequency | 50 Hz | |
Connection type | Yg | |
SFZ-40000/110 Transformer | Nominal voltage | 110/10.5 |
Nominal frequency | 50 Hz | |
Connection type | YNd11 | |
Nominal capacity | 40 MVA | |
LV winding R | 0.010032 Ω | |
LV winding L | 9.212 × 10−4 H | |
HV winding R | 0.50364 Ω | |
HV winding L | 0.1011 H | |
Excitation R | 4,321,42.86 Ω | |
Excitation L | 481.44 H | |
Load | Nominal voltage | 10.5 kV |
Nominal frequency | 50 Hz | |
Connection type | Yg | |
Nominal active power | 40 MVar | |
Nominal reactive power | 0 | |
Circuit-Breaker | Breaker resistance | 0 Ω |
Snubber resistance | 1 × 106 Ω | |
Fault | Fault resistance | 0.001Ω |
Snubber resistance | 1 × 106 Ω |
Num | Parameters | Configuration |
---|---|---|
1 | Connection group | YNd11 |
2 | Nominal voltage | 110 kV/10.5 kV |
3 | Nominal frequency | 50 Hz |
4 | Nominal capacity | 40 MVA |
5 | No-load loss | 28 kW |
6 | No-load current percentage | 0.2 |
7 | Wire diameter (HV/LV) | 86.5 mm/90 mm |
8 | Winding height | 1220 mm |
9 | Tank (length × width × height) | 4750 mm × 1620 mm × 2730 mm |
Num | Stress | Criteria |
---|---|---|
1 | mean hoop compressive stress | σt1 ≤ 0.35 Rp0.2 |
2 | radial bending stress | σbr ≤ 0.7 Rp0.2 |
3 | free buckling critical stress | σt1 ≤ σcr |
4 | compressive stress on radial spacers | σact ≤ 80 MPa |
5 | axial bending stress | σAL ≤ 0.9 Rp0.2 |
Num | Calculated Value (MPa) | Critical Value (MPa) |
---|---|---|
1 | σt1 = 21.43 | ≤56 |
2 | σbr = 2.24 | ≤112 |
3 | σcr = 1800 | ≥21.43 |
4 | σact = 3.39 | ≤80 MPa |
5 | σba = 15.22 | ≤144 |
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Chen, J.; Zhang, Z.; Gao, Z.; Wu, J. Analysis of the Mechanical Stability of Power Transformer Windings Considering the Influence of Temperature Field. Energies 2025, 18, 1374. https://doi.org/10.3390/en18061374
Chen J, Zhang Z, Gao Z, Wu J. Analysis of the Mechanical Stability of Power Transformer Windings Considering the Influence of Temperature Field. Energies. 2025; 18(6):1374. https://doi.org/10.3390/en18061374
Chicago/Turabian StyleChen, Junxin, Zhanlong Zhang, Zhihao Gao, and Jinbo Wu. 2025. "Analysis of the Mechanical Stability of Power Transformer Windings Considering the Influence of Temperature Field" Energies 18, no. 6: 1374. https://doi.org/10.3390/en18061374
APA StyleChen, J., Zhang, Z., Gao, Z., & Wu, J. (2025). Analysis of the Mechanical Stability of Power Transformer Windings Considering the Influence of Temperature Field. Energies, 18(6), 1374. https://doi.org/10.3390/en18061374