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References

1 
Yu-ran Goh, Myeong-hwan Min and Ahn Tae-poong, “Topology study and analysis of various composite DC circuit breakers in MVDC distribution system,” The Transactions of the Korean Institute of Power Electonics, vol. 25, no. 6, 2020.URL
2 
Rae-Young Kim, “Current status of power equipment development for construction and operation of MVDC distribution networks,” The Korean Institute of Electrical Engineers, vol. 70, no. 10, 2021.URL
3 
Geum-Jeong Lee, “Promotional Power and Vision of Next-Generation AC-DC Hybrid Distribution Network R&D Project,” The Korean Institute of Electrical Engineers, vol. 70, no.10, 2021.DOI
4 
Science and Technology Policy Institute (STEPI), “Next-Generation AC/DC Hybrid Distribution Network Technology Development Project: 2020 Preliminary Feasibility Study Report,” Science and Technology Policy Institute, 2021.URL
5 
P. Hock, N. Belda, V. Hinrichsen, and R. Smeets, “Investigations on Metal-Oxide Surge Arresters for HVDC Circuit Breaker Applications,” In Proceedings of the INMR World Congress, Tucson, AZ, USA, 2019.URL
6 
M. Callavik, A. Blomgerg, J. Hafner and B. Jacobson, “The hybrid HVDC breaker,” ABB Grid Systems, Technical Paper, pp. 133, 2012.URL
7 
S. Bernik, S. Macek, B. Ai, “Microstructural and electrical characteristics of Y2O3-doped ZnO–Bi2O3-based varistor ceramics,” Journal of the European Ceramic Society, vol. 21, pp. 1875–1878, 2001.DOI
8 
A. C. Caballero, F. J. Valle, M. Villegas, C. Moure, P. Duran, J. F. Fernandez, “Improved chemical stability of ZnO-BaO based varistors,” Journal of the European Ceramic Society, vol. 20, pp. 2767-2772, 2000.DOI
9 
Felix Greuter, “ZnO Varistors: From Grain Boundaries to Power Applications,” Oxide Electronics, Chapter 8, pp. 168-174, 2021.DOI
10 
T. K. Gupta, W. G. Carlson, “A grain-boundary defect model for instability/stability of a ZnO varistor,” Journal of Materials Science, vol 20, pp. 3489-3500, 1985.DOI
11 
R. Einzinger, “Grain junction properties of ZnO varistors,” Applications of Surface Science, vol. 3, pp. 390-408, 1979.DOI
12 
P. L. Hower, T. K. Gupta, “A barrier model for ZnO varistors,” Journal of Applied Physics, vol. 50, 1979.URL
13 
Seung-Kyu Choi, Jae-Bok Lee, S. V. Shenderey, Hyeon-Hak Jeong, Jun-Yeong Jeong, Ho-Dong Kim, Seong-Man Kang, “Surge Energy Capability of ZnO-Based Varistors According to the Sb2O3 and Bi2O3,” Journal of Nanoscience and Nanotechnology, vol. 16, pp. 12702-12707, 2016.DOI
14 
Seung-Kyu Choi, Hyeon-Hak Jeong, Seong-Man Kang, “The correlation between surge energy capability and Bi2O3 volatilization in ZnO varistors,” Journal of the Ceramic Society of Japan, vol, 126, no. 4, pp. 236-240, 2018.DOI