• Title/Summary/Keyword: 100 MVA 초전도 변압기

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Design and fabrication for large current capacity of high temperature superconducting transformer (대전류용 고온초전도 변압기의 설계 및 제작)

  • Kim, Yung-Il;Lee, Se-Yeon;Park, Sang-Ho;Ham, Il-Kyu;Lee, Ji-Kwang;Hahn, Song-Yop;Choi, Kyeong-Dal
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.892-893
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    • 2011
  • 본 논문은 2세대 고온 초전도 선재를 이용한 대전류용 고온초전도 변압기의 설계 및 제작에 관한 연구결과이다. 대전류용 변압기는 154 kV, 단상 33 MVA를 기준으로 기 설계된 초전도 변압기의 요소기술 평가를 위한 것으로 초전도 변압기의 제작의 중요 요소기술 중 하나인 저압권선용 초전도 선재의 대전류 통전 특성평가와 초전도 권선의 교류손실 저감효과에 관한 검증을 위해 설계 및 제작 되었다. 이러한 대전류용 변압기의 설계와 초전도 권선의 제작, 시험을 통해 실제 100 MVA 초전도 변압기 설계의 신뢰성과 대전류 통전용 초전도 선재의 성능평가를 확인하였다.

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Conceptual Design of a Single Phase 33 MVA HTS Transformer with a Tertiary Winding (3차 권선을 고려한 단상 33MVA 고온초전도 변압기의 개념설계)

  • Lee, S.W.;Kim, W.S.;Hahn, S.Y.;Hwang, Y.I.;Choi, K.D.
    • Progress in Superconductivity
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    • v.7 no.2
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    • pp.162-166
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    • 2006
  • We have proposed a 3 phase, 100 MVA, 154 kV class HTS transformer substituting for a 60 MVA conventional transformer. The power transformer of 154 kV class has a tertiary winding besides primary and secondary windings. So the HTS transformer should have the 3rd superconducting winding. In this paper, we designed conceptually the structure of the superconducting windings of a single phase 33 MVA transformer. The electrical characteristics of the HTS transformer such as % impedance and AC loss vary with the arrangement of the windings and gaps between windings. We analyzed the effects of the winding parameters, evaluated the cost of each design, and proposed a suitable HTS transformer model for future power distribution system.

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Design of an HTS Transformer with OLTC (OLTC를 고려한 고온 초전도 변압기의 설계)

  • Choi, J.H.;Lee, S.W.;Park, M.J.;Joo, H.G.;Han, J.H.;Hahn, S.Y.;Choi, K.D.
    • Progress in Superconductivity and Cryogenics
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    • v.9 no.1
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    • pp.67-71
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    • 2007
  • HTS transformers which have been developed until now had only fundamental structures. Among the auxiliary functions of conventional transformers, voltage regulating is the most important one. For the voltage regulation, conventional transformers are equipped with on load tap changers (OLTCS). In this paper, we describe the possibility of the HTS transformer with OLTC. For the case study, we designed a single phase 33 MVA HTS transformer with OLTC. It is one of three individual HTS transformers which composes a 3 phase, 100 MVA transformer. It is expected to substitute for a 3 phase, 60 MVA conventional transformer in Korea. The parameters of an HTS transformer are varied due to the gap length between primary and secondary windings. The length was decided for the transformer to have the impedance of 12 %. Its size was limited to the one of the conventional transformer. The characteristics of the HTS transformer were analyzed in both case of having OLTC and not.

Design of a 33 MVA HTS Transformer with OLTC (OLTC를 고려한 33 MVA 초전도 변압기 설계)

  • Choi, J.H.;Lee, S.W.;Park, M.J.;Kim, W.S.;Choi, K.D.
    • Proceedings of the KIEE Conference
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    • 2006.07b
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    • pp.885-886
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    • 2006
  • We have proposed a 100 MVA, 3 phases, 154 kV class HTS transformer which will substitute for 60 MVA conventional transformer. In this paper, we designed conceptually the structure of the superconducting windings of a single phase 33 MVA transformer. The power transformer of 154 kV class has a tertiary winding besides primary and secondary windings. So the HTS transformer should have the 3rd superconducting winding, it makes the cost of the HTS transformer high and the efficiency low. Further more we considered On Load Tap Changer (OLTC) in HTS power transformer. OLTC equipment is required for fitting to a power transformer by which the voltage ratio between the windings can be varied while the transformer is on load. We analyzed the electrical characteristics of the HTS transformer such as magnetic stress and AC loss.

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Characteristics of a Continuous Disk Winding for High Voltage HTS Transformer (고전압 초전도 변압기용 연속 디스크 권선의 특성 해석)

  • Hwang, Young-In;Lee, Seung-Wook;Kim, Woo-Seok;Choi, Kyeong-Dal
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.56 no.2
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    • pp.295-300
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    • 2007
  • High temperature superconducting (HTS) windings for an HTS transformer which have been developed have two kinds of type, one is the layer winding and the other is disk winding. The layer winding has adopted for an HTS power transformer so far because of the small AC losses of the HTS windings. The disk windings have surface of the HTS wire. We propose a new winding method for a high voltage HTS transformer which has advantages of both type of HTS windings, and we call it continuous disk winding. This new HTS winding consists of pile of HTS disk windings. The continuous disk winding was fabricated with multi-stacked HTS wires for dover HTS transformer. We can check the potential possibility from the characteristic test of the fabricated winding. The new type HTS windings can be applied to HTS power transformers, especially to the high voltage ones.

The Basic Insulation Design of 60 kV Bushing for Netural Line of 154 kV Class HTS Transformer (154 kV급 고온초전도 변압기의 중성선용 60 kV 부싱의 기초 절연설계)

  • Choi, Jae-Hyeong;Choi, Jin-Wook;Kim, Sang-Hyun
    • Progress in Superconductivity and Cryogenics
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    • v.10 no.3
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    • pp.32-35
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    • 2008
  • A common problem in many fields of cryogenic power engineering is applying high voltage to cold parts of superconducting apparatus. In many cases, a bushing provides electrical insulation for the conductor which makes the transition from ambient temperature to the cold environment. The 60 kV class cryogenic high voltage bushing for neutral line of the 154 kV / 100MVA high temperature superconducting (HTS) transformer was described. The bushing is energized with the line-to-ground voltage between the coaxial center and outer surrounding conductors; in the axial direction, there was a temperature difference from ambient to about 77 K. For the insulation design of cryogenic bushing, electrical insulation characteristics of the GFRP were discussed in this paper.