• Title/Summary/Keyword: double pancake

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Optimal Design and fabrication of Prototype DC Reactor for Inductive Superconducting fault Current Limiter (유도형 고온초전도 한류기용 Prototype 직류 리액터의 설계와 제작)

  • 김태중;강형구;고태국
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.16 no.12S
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    • pp.1292-1298
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    • 2003
  • In this paper, dc reactor lot the inductive high-Tc superconducting fault current limiter (SFCL) was optimally designed by finite element method(FEM). The Prototype high-Tc do reactor was manufactured and compared to the results of design. This dc reactor consists of 4∼stacked double pancake coils which are wounded with Bi-2223 wire coated with SUS315L. Kapton tape is used for the insulation of turn to turn and layer to layer. Each pancake is connected in series by soldering Finally, optimal design and manufacture method lot the dc reactor is suggested in this paper. Through the comparison of result of optimal design and experimental result of prototype high-Tc superconducting dc reactor, reliance on the design of the high-Tc dc reactor tot the 1.2 kV/80 A SFCL is proved.

A Study on the Characteristic Evaluation of An HTS Coil with respect to the Winding Methods

  • Jo, Hyun-Chul;Choi, Suk-Jin;Jang, Jae-Young;Hwang, Young-Jin;Lee, Chang-Young;Ahn, Min-Cheol;Yoon, Yong-Soo;Ko, Tae-Kuk
    • Progress in Superconductivity and Cryogenics
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    • v.12 no.4
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    • pp.31-35
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    • 2010
  • In superconducting magnet applications, winding methods of the superconducting magnet can be classified into a layer winding and a pancake winding. The superconducting magnet using high temperature superconductor (HTS) with rectangular shape is generally fabricated using the pancake winding method. On the other hand, low temperature superconducting (LTS) magnet may be wound by either a pancake winding or a layer winding. Compared with the layer winding, the pancake winding method has a merit of easy replacement of a damaged pancake module, but it also has a demerit of requirement of splicing between each double pancake modules. In this paper, we investigated characteristics of the layer and pancake winding methods using HTS. Six samples were wound out of BSCCO and Coated Conductors (CCs) by two winding methods and their characteristics were experimentally observed.

10kVA High $T_c$ Superconducting Power Transformer with Double Pancake Winding (더블펜케익 권선형 10kVA 고온초전도 변압기)

  • Lee, H.J.;Cha, G.S.;Lee, J.K.;Choi, K.D.;Ryu, K.W.;Hahn, S.Y.
    • Proceedings of the KIEE Conference
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    • 2000.07b
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    • pp.934-936
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    • 2000
  • This paper presents the design of a double pancake winding type high $T_c$ superconducting power transformer In the design of the transformer. BSCCO-2223 tape was considered as the conductor. Double pan cake winding was adopted in order to easy the construction of the winding and to lessen the leakage reactance of the transformer. Numerical calculation was used to decide the arrangement of the double pan cake winding. Room temperature bore type cryostat has been constructed and its heat loss was estimation.

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Design of a 1 MVA HTS Transformer with Double Pancake Windings

  • Kim, Woo-Seok;Park, Kyeong-Dal;Joo, Hyeong-Gil;Han, Jin-Ho;Hong, Gye-Won;Park, Jungho;Heesuck Song;Kim, Sung-Hoon;Hahn, Song-yop
    • Progress in Superconductivity and Cryogenics
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    • v.5 no.1
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    • pp.48-51
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    • 2003
  • A 1 MVA transformer with BSCCO-2223 high Tc superconducting (HTS) tapes was designed. The rated voltages of each sides of the transformer are 22.0 kV and 6.6 kV respectively. Double pancake HTS windings, which have advantages of insulations and distribution of high voltage, were adopted. Four HTS tapes were wound in parallel fer the windings of low voltage side. Each winding was composed of several double pancake windings made of four parallel conductors were transposed in order to distribute the currents equally in each conductor. A core of the transformer was designed as a shell type core made of laminated silicon steel plate and the core is separated with the windings by a cryostat with a room temperature bore. The operating temperature of HTS windings will be 65K with liquid nitrogen, and a cooling system using a cryocooler was proposed and designed conceptually. This HTS transformer is going to be manufactured in near future based on the design parameters presented in this paper.

Dielectric composition of the double pancake coil interior (Double pancake 코일 내부의 절연구성 연구)

  • Joung, Jong-Man;Baek, Sung-Myeong;Kwak, Dong-Sun;Lee, Joung-Won;Kim, Sang-Hyun
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2002.05a
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    • pp.210-213
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    • 2002
  • For insulation design of the superconducting transformer, many types of insulation tests should be carried out. To clarify the components of insulation for superconducting transformer, there are main four parts as 1ike that turn-to-turn interior of each primary and secondary windings, layer-to-layer between primary and secondary windings, and winding to grounded structures. The insulation components should meet the required withstand voltage of the system and enough safety factors must included. As the fundamental insulation characteristics, we tested surface flashover voltage of spacer that would place between the coils and would take the role of both cooling duct and insulator. The structure of spacer in practice vary depending on coil type, in this work we considered double pancake coil for the superconducting transformer. In this study we tested flashover voltages of several arrangement of spacer.

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A design of multi-width HTS magnets considering both wire consumption and field homogeneity

  • Yang, Hongmin;Ahn, Minchul
    • Progress in Superconductivity and Cryogenics
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    • v.23 no.2
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    • pp.24-27
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    • 2021
  • This paper presents a design methodology of high-temperature superconducting (HTS) magnets. The magnet consists of several double pancake coils with a variety of wire width. This technique, named Multi-Width, is well known to make efficient use of the superconducting wire. It is common for design of high-temperature superconducting magnets to not only reduce wire consumption used, but also consider the homogeneity of the magnetic field. In this paper, we study a design method that efficiently reduces wire usage while considering magnetic field homogeneity. The design is carried out by calculating the critical current and the critical magnetic field according to the configuration of arranging the thickness of the wire to determine the number of windings. The width of wire comprising the magnet was set to 4 - 12 mm, and the number of double pancake coils was set to an even number to consist of top-down symmetry. To verify the validity of the design, we compared the progress of the design code with a complete enumeration survey. As a case study, we designed a magnet that generates a central magnetic field of 3 T or more in a 240 mm bore in diameter. Optimality can be evaluated by weighing wire consumption and field homogeneity according to the magnet's use or user preference.

Design, Fabrication and Evaluation of a Conduction Cooled HTS Magnet for SMES (SMES용 전도냉각형 고온초전도 자석의 설계, 제작 및 평가)

  • Bae, Joon-Han;Kim, Hae-Jong;Seong, Ki-Chul
    • Journal of Energy Engineering
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    • v.20 no.3
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    • pp.185-190
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    • 2011
  • This paper describes design, fabrication, and evaluation of the conduction cooled high temperature superconducting (HTS) magnet for superconducting magnetic energy storage (SMES). The HTS magnet is composed of twenty-two of double pancake coils made of 4-ply conductors that stacked two Bi-2223 multi-filamentary tapes with the reinforced brass tape. Each double pancake coil consists of two solenoid coils with an inner diameter of 500 mm, an outer diameter of 691 mm, and a height of 10 mm. The aluminum plates of 3 mm thickness were arranged between double pancake coils for the cooling of the heat due to the power dissipation in the coil. The magnet was cooled down to 5.6 K with two stage Gifford McMahon (GM) cryocoolers. The maximum temperature at the HTS magnet in discharging mode rose as the charging current increased. 1 MJ of magnetic energy was successfully stored in the HTS magnet when the charging current reached 360A without quench. In this paper, thermal and electromagnetic behaviors on the conduction cooled HTS magnet for SMES are presented and these results will be utilized in the optimal design and the stability evaluation for conduction cooled HTS magnets.

A Joining Method between HTS Double Pancake Coils (고온초전도 더블 팬케이크 코일들 사이의 접합 방법)

  • Sohn, Myung-Hwan;Sim, Ki-Deok;Kim, Seok-Ho;Kim, Hae-Jong;Bae, Joon-Han;Lee, Eon-Young;Min, Chi-Hyun;Seong, Ki-Chul
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.55 no.12
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    • pp.633-639
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    • 2006
  • High temperature superconductor (HTS) winding coil is one of the key component in superconducting device fabrication. Double-pancake style coils are widely used for such application. High resistance between pancake coils greatly affects the machine design, operating condition and thus the stability. In order to reduce such resistance, experimentalists are looking for efficient and damage free coil connecting methods. In this respect, here we proposed parallel joining method to connect the coils. This is to do crossly joining with HTS tapes on two parallel HTS tapes. Joint samples between two parallel HTS tapes were prepared by using HTS tapes and current-voltage (I-V) characteristic curves were investigated at liquid nitrogen temperature i.e., 77.3 K. A 20 cm length joint connected between two parallel HTS tapes shows $32.5n{\Omega}$, for currents up to 250 A. A small HTS magnet, having two double pancake sub-coils connected together through new parallel joint method was fabricated and their current-voltage (I-V) characteristic curve was investigated. At 77.3K, critical current(Ic) of 97 A and resistance of $55n{\Omega}$ for currents upto 130 A were measured. At operating current 86 A lower than Ic, Joule heats generated in whole magnet and at joint region between sub-coils were 226 mW and 0.4 mW, respectively. Low Joule heat generation suggests that this joining method may be used to fabricate HTS magnet or windings.

Evaluation of a model coil characteristics for HTS rotating machine using conduction-cooled (전도 냉각을 이용한 고온 초전도 회전기용 모델 코일의 특성 평가)

  • Lee, J.D.;Baik, S.K.;Sohn, M.H.;Lee, E.Y.;Kim, Y.C.;Kwon, Y.K.;Park, M.W.;Yu, I.K.
    • Proceedings of the KIEE Conference
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    • 2006.07b
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    • pp.725-726
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    • 2006
  • In large scale superconducting rotating machine, HTS field coils are constructed with many stacks of single or double pancake coils connected in series. In spite of its higher thermal stability, HTS field coil experiences some quench, which results in some part of burn-out in the field coils. Thus in the view point of the HTS rotating machine field coil design and testing, it was very important to predict the possibility of quench occurrence in the designed field coils. In this paper, a HTS racetrack coil constructed with two single pancake coils and one double pancake coil was tested in LN2 and cooling by GM refrigerator. It is wound using the Bi-2223 tape. The experimental details and results are presented in this paper.

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Fabrication and Test of Persistent Current Switch for HTS Magnet System

  • Hyoungku Kang;Kim, Jung-Ho;Jinho Joo;Yoon, Yong-Soo;Ko, Tae-Kuk
    • Progress in Superconductivity and Cryogenics
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    • v.5 no.1
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    • pp.92-96
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    • 2003
  • This paper deals with the characteristics of persistent current switch (rCS) system fer applied HTS magnet system. To apply the high-Tc superconductor in superconducting machine such as motror, generator, MAGLEV, MRI, and NMR, the study on high-Tc superconducting persistent current mode must be performed. In this experiment, the PCS system consists otd superconducting magnet, PCS and magnet power supply. The superconducting magnet was fabricated by connecting four double pancake coils (DPCs) in series. The PCS was inductive double pancake coil type and heated up by the SUS 303L tape heater. The optimal length of PCS was calculated and thermal quench state of PCS was simulated by using finite element method(FEM) and compared with experimental results. The optimal energy to normalize the PCS was calculated and introduced. Finally, the persistent current was observed with respect to various ramping up rate and magnitude of charging current.