Analysis on Double Quench and Instantaneous Power of SFCL Using Two Magnetically Coupled Windings According to Winding Direction
Abstract
1. Introduction
2. Experimental Methods
2.1. Structure and Operational Principle
2.2. Experimental Design and Methods
3. Experimental Results
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
SFCL | the superconducting fault current limiter |
N1 | the primary winding of the two coupled windings |
N2 | the secondary winding of the two coupled windings |
SC1 | the superconducting element 1 |
SC2 | the superconducting element 2 |
IC | the critical current of superconducting element |
Ein | the AC power supply voltage |
Zln | the line impedance |
RL | the load resistance |
iN1 | the current of the primary winding |
iN2 | the current of the secondary winding |
iSC1 | the current of the superconducting element 1 |
iSC2 | the current of the superconducting element 2 |
VN1 | the voltage of the primary winding |
VN2 | the voltage of the secondary winding |
VSC1 | the voltage of the superconducting element 1 |
VSC2 | the voltage of the superconducting element 2 |
SW1 | the switch 1 of SFCL |
SW2 | the switch 2 of SFCL |
RSC1 | the resistance of the superconducting element 1 |
RSC2 | the resistance of the superconducting element 2 |
PSFCL | the instantaneous power of the superconducting fault current limiter |
PSC1 | the instantaneous power of the superconducting element 1 |
PSC2 | the instantaneous power of the superconducting element 2 |
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Experimental Circuit | Value | Unit | |
---|---|---|---|
Power source (EIn) | AC voltage | 120 | Vrms |
Frequency | 60 | Hz | |
Line impedance (ZIn) | Resistance | 0.42 | Ω |
Reactance | 0.066 | Ω | |
Load (RL) | Resistance | 5 | Ω |
SFCL using two coupled windings | Value | Unit | |
Two coupled windings | Primary winding (N1) | 15 | Turns |
Secondary winding (N2) | 45 | Turns | |
Two superconducting elements (SC1, SC2) | Material | YBCO | |
Fabrication form | Thin film | ||
Critical temperature (TC) | 87 | K | |
Critical current (IC) | 27 | A |
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Ko, S.-C.; Han, T.-H.; Lim, S.-H. Analysis on Double Quench and Instantaneous Power of SFCL Using Two Magnetically Coupled Windings According to Winding Direction. Energies 2020, 13, 5533. https://doi.org/10.3390/en13215533
Ko S-C, Han T-H, Lim S-H. Analysis on Double Quench and Instantaneous Power of SFCL Using Two Magnetically Coupled Windings According to Winding Direction. Energies. 2020; 13(21):5533. https://doi.org/10.3390/en13215533
Chicago/Turabian StyleKo, Seok-Cheol, Tae-Hee Han, and Sung-Hun Lim. 2020. "Analysis on Double Quench and Instantaneous Power of SFCL Using Two Magnetically Coupled Windings According to Winding Direction" Energies 13, no. 21: 5533. https://doi.org/10.3390/en13215533
APA StyleKo, S.-C., Han, T.-H., & Lim, S.-H. (2020). Analysis on Double Quench and Instantaneous Power of SFCL Using Two Magnetically Coupled Windings According to Winding Direction. Energies, 13(21), 5533. https://doi.org/10.3390/en13215533