Temperature Distribution in the Insulation System of Condenser-Type HV Bushing—Its Effect on Dielectric Response in the Frequency Domain
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Measurements with Uniform Temperature Distribution
- -
- tan δ—loss tangent;
- -
- Ae—activation energy;
- -
- T—temperature;
- -
- K—Boltzman’s constant.
3.2. Measurements with Nonuniform Temperature Distribution
4. Discussion
4.1. Modeling the Dielectric Response of the Bushing Insulation in the Case of Significant Temperature Distribution along Its Axis
- -
- ε∗P(ϖ,T)—complex permittivity of paper impregnated with mineral oil;
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- ε∗U(ϖ,T)—complex permittivity representing areas of the leakage nature (oil, shield);
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- X1, Y1, X2, Y2—geometric parameters describing the participation of the paper in the whole modeled space.
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- —the real part of permittivity calculated respectively for the areas of temperatures T1 and T2 according to Formulae (1) and (2);
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- —the imaginary part of permittivity calculated respectively for the areas of temperatures T1 and T2 according to Formulae (1) and (2).
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- A—participation of the area of temperature T1 in the whole volume of the insulator;
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- tan δXY1, tan δXY2—tangent of the dielectric loss angle of the areas of temperatures T1 and T2.
4.2. Verification of the 2XY Model on Insulators in Service
- -
- —loss tangent measured for a specific frequency;
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- —loss tangent calculated for a specific frequency based on XY or 2XY model;
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- —number of points for which measurements and calculations were carried out.
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- —loss tangent measured for a specific frequency;
- -
- —loss tangent calculated for a specific frequency based on XY or 2XY model;
- -
- —number of points for which measurements and calculations were carried out.
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- —oil conductivity in the air part (at T1 temperature);
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- —oil conductivity in the oil part (at T2 temperature);
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- —activation energy equal to 0.4 eV;
- -
- —Boltzmann constant.
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
Variable | Symbol | Units |
---|---|---|
Complex permitivity | F/m | |
Real part of complex permitivity | F/m | |
Imaginary part of complex permitivity | F/m | |
Relative content of barriers | X | % |
Relative content of spacers | Y | % |
Loss tangent | - | |
Mean of the absolute difference modules | MADM | % |
Correlation coefficient | r | - |
Relative differences | Rd | % |
Temperature | T | °C |
Frequency | f | Hz |
Voltage | U | V |
Activation energy | Ae | eV |
Participation of the air part in the whole volume of the insulator | A | % |
Conductivity | σ | S/m |
Moisture content in paper | Mc | % |
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Temperature (°C) | ||
---|---|---|
Case N° | Oil | Air |
1 | 23 | 23 |
2 | 30 | 30 |
3 | 40 | 40 |
4 | 50 | 23 |
5 | 60 | 23 |
Temperature (°C) | |||
---|---|---|---|
Sensor N° | Case 1 | Case 2 | Case 3 |
1 | 22.7 | 30.4 | 40.4 |
2 | 22.7 | 28.3 | 37.9 |
3 | 22.9 | 29.6 | 40.7 |
4 | 23.2 | 30.5 | 43.1 |
5 | 23.8 | 31.3 | 41.3 |
Average | 23.1 | 30.1 | 40.7 |
Temperature (°C) | ||
---|---|---|
Case N° | Case 4 | Case 5 |
Oil | 50.0 | 60.1 |
1 | 25.4 | 29.2 |
2 | 23.6 | 25.1 |
3 | 23.5 | 25.1 |
4 | 23.7 | 25.2 |
5 | 25.2 | 30.4 |
№ | XY Model | |||||
---|---|---|---|---|---|---|
X/Y, % | T, °C | σ, S/m | Mc, % | r | MADM, % | |
Bushing 1 | 85/45 | 30 | 7.79 × 10−13 | 2.3 | 0.980 | 46.5 |
Bushing 2 | 90/0 | 22 | 2.72 × 10−11 | 2.3 | 0.942 | 38.9 |
Bushing 3 | 74/86 | 25 | 1.69 × 10−12 | 1.0 | 0.991 | 5.9 |
№ | 2XY Model | ||||||||
---|---|---|---|---|---|---|---|---|---|
X1/Y1, % | X2/Y2, % | T1, °C | T2, °C | σ2, S/m | Mc1, % | Mc2, % | r | MADM, % | |
Bushing 1 | 96/2 | 100/100 | 24 | 43 | 1.87 × 10−11 | 2.5 | 2.5 | 0.985 | 14.6 |
Bushing 2 | 31/69 | 100/100 | 15 | 36 | 1.60 × 10−9 | 3.7 | 3.6 | 0.983 | 11.3 |
Bushing 3 | 94/0 | 98/33 | 18 | 38 | 9.37 × 10−12 | 1.0 | 1.0 | 0.999 | 3.2 |
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Walczak, K.; Gielniak, J. Temperature Distribution in the Insulation System of Condenser-Type HV Bushing—Its Effect on Dielectric Response in the Frequency Domain. Energies 2021, 14, 4016. https://doi.org/10.3390/en14134016
Walczak K, Gielniak J. Temperature Distribution in the Insulation System of Condenser-Type HV Bushing—Its Effect on Dielectric Response in the Frequency Domain. Energies. 2021; 14(13):4016. https://doi.org/10.3390/en14134016
Chicago/Turabian StyleWalczak, Krzysztof, and Jaroslaw Gielniak. 2021. "Temperature Distribution in the Insulation System of Condenser-Type HV Bushing—Its Effect on Dielectric Response in the Frequency Domain" Energies 14, no. 13: 4016. https://doi.org/10.3390/en14134016
APA StyleWalczak, K., & Gielniak, J. (2021). Temperature Distribution in the Insulation System of Condenser-Type HV Bushing—Its Effect on Dielectric Response in the Frequency Domain. Energies, 14(13), 4016. https://doi.org/10.3390/en14134016