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Specific Application Features of Current-Limiting Devices Based on High-Temperature Superconductivity in High-Voltage Electric Networks

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Power Technology and Engineering Aims and scope

The specal features of the use of current-limiting devices based on high-temperature superconductivity (HTSC CLD) in high-voltage electrical grids are presented. Separate installation of an HTSC CLD and jointly with a current-limiting reactor (CLR) is considered, and the advantages and disadvantages of an HTSC CLD installation were noted.

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References

  1. ”Manufacturing and test of a 35 kV/90 MV-A saturable iron-core type superconductive fault current limiter for liver-grid operation,” Trans. Appl. Supercond., 19(3) (2009).

  2. ”A New Project on Applying 22.9 kV HTS Cables and SFCL to KEPCO Power Grid,” in: Conference Paper in EPRI Superconductivity Conference, Oak Ridge, TN, Nov 11 2008 (2008).

  3. ”Design, Test, and Demonstration of a Saturable Core Reactor HTS Fault Current Limiter,” in: DOE Peer Review, Alexandria, VA, August 4 – 6, 2009 (2009).

  4. ”A current-limiting device using superconducting d. c. bias applications and prospects Trans,” Power Appar. Syst., 101, 3173 – 3177 (1982).

  5. ”First commercial medium voltage superconducting fault current limiters — production, test and installation,” Supercond. Sci. Tech., (2009).

  6. ”Introduction of a hybrid SFCL in KEPCO grid and local points at issue,” Trans. Appl. Supercond., 19(3) (2009).

  7. R. Dommerque, S. Kramer, A. Hobl, R. Bohm, M. Bludau, J. Bock, D. Klaus, H. Piereder, A. Wilson, T. Kruger, G. Pfeiffer, K. Pfeiffer, and S. Elschner, “First commercial medium voltage superconducting fault-current limiters — production, test and installation,” Supercond. Sci. Tech., 23(3) (2010).

  8. K. Tekletsadik, P. Lubicki, S. Nickerson, J. Ludlum, and P. Murphy, “Fault current limiter selection considerations for utility engineers,” in: CIGRE: 2014 Grid of the Future Symposium (2014).

  9. ”Development and in-grid demonstration of a transmission voltage Superlimiter(tm) fault current limiter,” in: DOE Peer Review, Alexandria, VA, August 4 – 6.2009 (2009).

  10. ”Glow Energy orders two SFCLs from Applied Materials,” Supercond. Week, 29(6) (2015).

  11. Siemens to Use Superconductors in Building the Power Grid of the Future in Augsburg. Joint Press Release Siemens, Stadtwerke Augsburg, Munich, December 18, 2014 (2014).

  12. N. A. Mineev, D. A. Gorbimova and M. E. Moizykh, “Model of calculating the response of a superconducting fault current limiter in the electrical grid,” Int. J. Mech. Eng. Tech., No. 9(12), 722 – 728 (2018).

  13. A. S. Brilinskii, G. A. Evdokunin, and D. A. Trubin, “Analysis of transient recovery voltage at the terminals of breakers using current-limiting reactors,” Élektr. Stantsii, No. 5, 35 – 45 (2018).

  14. Regulations for Electric Installation (PUE). 7th edition [in Russian], JSC Énergoservis, Moscow (2008).

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Correspondence to A. S. Brilinskii.

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Translated from Élektricheskie Stantsii, No. 9, September 2019, pp. 43 – 51.

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Brilinskii, A.S., Evdokunin, G.A., Kuz’min, I.A. et al. Specific Application Features of Current-Limiting Devices Based on High-Temperature Superconductivity in High-Voltage Electric Networks. Power Technol Eng 53, 751–759 (2020). https://doi.org/10.1007/s10749-020-01151-9

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  • DOI: https://doi.org/10.1007/s10749-020-01151-9

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