Magnetizing Characteristics of Bridge Type Superconducting Fault Current Limiter (SFCL) with Simultaneous Quench Using Flux-Coupling
Abstract
:1. Introduction
2. Structure and Operating Principle
2.1. Sturcture and Principle
2.2. Equivalent Circuit
3. Experimental Results
3.1. Preparation of Experiment
3.2. Experimental Results
4. Conclusions
- (1)
- The fault current can be limited faster.
- (2)
- The magnetic flux (ϕ1) of the primary winding had little change, but the magnetic flux (ϕ2) of the secondary winding decreased significantly.
- (3)
- Immediately after the failure, the power consumption of HTSC elements acted more.
- (4)
- During the fault period, the range of voltage fluctuation according to the magnetizing current was wider, but the energy () consumed by the magnetization power was small.
- (5)
- During the fault period, both the maximum magnetization power and the magnetization power’s area change were high according to the magnetizing current.
- (6)
- The maximum flux linkages (λ1, λ2) of the primary and secondary windings during the fault period were small, but their operating range was slightly wider.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
HTSC | the high temperature superconducting |
Ein | the AC power supply voltage |
iin | the input current of the bridge type SFCL |
ib | the total current of the primary winding and the secondary winding |
i1 | the current of the primary winding |
i2 | the current of the secondary winding |
im | the magnetizing current |
N1 | the turn number of the primary winding |
N2 | the turn number the secondary winding |
L1 | the self-inductance wound on the core |
LTh | the equivalent inductance for both windings |
ZSFCL | the limiting impedance |
the voltage rectified by the full-wave bridge | |
the voltage induced by the primary winding | |
the voltage induced by the secondary winding | |
the voltage induced by the HTSC element 1 | |
the voltage induced by the HTSC element 2 | |
RSC1 | the resistance of HTSC element 1 |
RSC2 | the resistance of HTSC element 2 |
Ic1 | the critical current of HTSC element 1 |
Ic2 | the critical current of HTSC element 2 |
Lline | the line inductance |
Rline | the line resistance |
Rload | the load resistance |
Vrms | the input voltage source |
ϕ1 | the magnetic flux of the primary winding |
ϕ2 | the magnetic flux of the secondary winding |
P1 | the power of the primary winding |
P2 | the power of the secondary winding |
PSC1 | the power of HTSC element 1 |
PSC2 | the power of HTSC element 2 |
pm | the magnetization power |
Jm | the joule energy dissipated by the magnetization power |
λ | the flux linkage |
λ1 | the flux linkage of the primary winding |
λ2 | the flux linkage of the secondary winding |
References
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Windings (Turn Number) | Value | Unit |
Primary Winding (N1) | 150 | Turns |
Secondary Winding (N2) | 150 | Turns |
Two HTSC Elements (, ) | Value | Unit |
Material | YBCO | Thin Film |
Critical Current () of HTSC element 1 | 18.15 | A |
Critical Current () of HTSC element 2 | 19.04 | A |
Total Meander Line Length | 420 | mm |
Thin Film Thickness | 2 | mm |
Line Width | 0.3 | μm |
Gold Layer Thickness | 0.2 | μm |
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Ko, S.-C.; Han, T.-H.; Lim, S.-H. Magnetizing Characteristics of Bridge Type Superconducting Fault Current Limiter (SFCL) with Simultaneous Quench Using Flux-Coupling. Energies 2020, 13, 1760. https://doi.org/10.3390/en13071760
Ko S-C, Han T-H, Lim S-H. Magnetizing Characteristics of Bridge Type Superconducting Fault Current Limiter (SFCL) with Simultaneous Quench Using Flux-Coupling. Energies. 2020; 13(7):1760. https://doi.org/10.3390/en13071760
Chicago/Turabian StyleKo, Seok-Cheol, Tae-Hee Han, and Sung-Hun Lim. 2020. "Magnetizing Characteristics of Bridge Type Superconducting Fault Current Limiter (SFCL) with Simultaneous Quench Using Flux-Coupling" Energies 13, no. 7: 1760. https://doi.org/10.3390/en13071760
APA StyleKo, S. -C., Han, T. -H., & Lim, S. -H. (2020). Magnetizing Characteristics of Bridge Type Superconducting Fault Current Limiter (SFCL) with Simultaneous Quench Using Flux-Coupling. Energies, 13(7), 1760. https://doi.org/10.3390/en13071760