• Title/Summary/Keyword: HTS SMES

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Manufacture and Tests of Cryostat for Micro SMES (Micro SMES용 크라이오스테l트 제작 및 특성평가)

  • 조전욱;심기덕;하홍수;김해종;성기철;권영길;고득용;염한길;류충식
    • Progress in Superconductivity and Cryogenics
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    • v.3 no.2
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    • pp.44-48
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    • 2001
  • SMES consists of Superconducting magnet, a power converter, a cryostat and HTS current leads The prototype cryostat with HTS current leads and refrigerators was designed and manufactured for developing micro SMES. The temperature rise under dc current in HTS current leads was measured. The performances of helium boil-off and mechanical stress were evaluated during transfer and vibration tests. The results will be used to develope the micro-SMES system.

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Key parameters of toroidal HTS coil for a superconducting magnetic energy storage system

  • Miyeon, Yoon;Jinwoo, Han;Ji-Kwang, Lee;Kyeongdal, Choi;Jung Tae, Lee;Seungyong, Hahn;Woo-Seok, Kim
    • Progress in Superconductivity and Cryogenics
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    • v.24 no.4
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    • pp.50-54
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    • 2022
  • High temperature superconducting (HTS) magnets for large-capacity energy storage system need to be composed of toroid magnets with high energy density, low leakage magnetic fields, and easy installation. To realize such a large capacity of a toroid HTS magnet, an HTS cable with large current capacity would be preferred because of the limited DC link voltage and instantaneous high power required for compensation of the disturbance in the power grid. In this paper, the optimal operating strategies of the SMES for peak load reduction of the microgrid system were calculated according to the load variation characteristics, and the effect of compensation of the frequency change in microgrid with a SMES were also simulated. Based on the result of the simulation, key design parameters of SMES coil were presented for two cases to define the specification of the HTS cable with large current capacities for winding of HTS toroid coils, which will be need for development of the HTS cable as a future work.

Calculation of Critical Current for High Temperature Superconducting Coil (HTS-코일의 임계전류 계산)

  • Li, Zhu-Yong;Ma, Yong-Hu;Ryu, Kyung-Woo;Park, Kwon-Bae;Oh, Il-Sung
    • Proceedings of the KIEE Conference
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    • 2008.07a
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    • pp.766-767
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    • 2008
  • 임계온도가 높아 시스템응용에서 매우 안정한 장점을 지닌 고온초전도(HTS)도체를 이용한 HTS-SMES(Superconducting Magnetic Energy Storage)장치에 대하여 많은 연구가 진행되고 있다[1]-[2]. 이런 HTS-SMES 장치의 고가성, 복잡성 등 원인에 기인하여 운전에 앞서 장치의 임계전류, 자속유동손실 및 충.방전시 불가피하게 발생되는 교류손실 등과 같은 기본적인 특성들이 선행하여 연구되어야 한다. 따라서 본 연구에서는 600 kJ급 HTS-SMES코일에 대한 자장분석을 기반으로 코일의 임계전류밀도 분포를 계산하였고 최소 임계전류밀도에 근거하여 코일의 임계전류를 결정하였다. 그 주요 결과를 요약하면 코일에서 자장과 임계전류밀도 분포는 코일의 형상에 무관하게 같은 분포 경향을 보여주며 최소 임계전류밀도는 코일의 top과 bottom의 중심에 위치하며, model코일에서 임계전류의 계산값과 측정값이 비교적 잘 일치하였기 때문에 600 kJ급 HTS-SMES코일도 잘 일치할 것으로 사료된다. 또한 SMES코일을 20 K에서 운전한다고 가정하면 코일 임계전류의 ${\sim}60%$, 4.2 K에서는 ${\sim}40%$에서 각각 운전하게 될 것으로 예측된다.

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Insulation Characteristics for a Conduction-Cooled HTS SMES

  • Cheon H.G.;Baek S.M.;Seong K.C.;Kim H.J;Kim S.H.
    • Progress in Superconductivity and Cryogenics
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    • v.7 no.2
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    • pp.39-43
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    • 2005
  • Toward the practical applications, on operation of conduction-cooled HTS SMES at temperatures well below 77 K should be investigated, in order to take advantage of a greater critical current density of HTS and considerably reduce the size and weight of the system. Recently, research and development concerning application of the conduction-cooled HTS SMES that is easily movement are actively progressing in Korea. Electrical insulation under cryogenic temperature is a key and an important element in the application of this apparatus. However, the behaviors of insulators for cryogenic conditions in air or vacuum are virtually unknown. Therefore, this work focuses on the breakdown and flashover phenomenology of dielectrics exposed in vacuum for temperatures ranging from room temperature to cryogenic temperature. Firstly, we summary the insulation factors of the magnet for HTS SMES. And a surface flashover as well as volume breakdown in air and vacuum has been investigated with two kind insulators. Finally, we will discuss applications for the HTS SMES including aging studies on model coils exposed in vacuum at cryogenic temperature.

Electrical Insulation Characteristics of HTS SMES (고온초전도 SMES의 절연특성)

  • Cheon Hyeon-Gweon;Choi Jae-Hyeong;Kwag Dong-Soon;Kim Hae-Jong;Seong Ki-Chul;Yun Mun-Soo;Kim Sang-Hyun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.19 no.6
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    • pp.574-578
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    • 2006
  • Toward the practical applications, on operation of conduction-cooled HTS SMES at temperatures well below 77 K should be investigated, in order to take advantage of a greater critical current density of HTS and considerably reduce the size and weight of the system. Recently, research and development concerning application of the conduction-cooled HTS SMES that is easily movement are actively progressing in Korea. Electrical insulation under cryogenic temperature is a key and an important element in the application of this apparatus. Using multi wrapped copper by Polyimide film for HTS SMES, the breakdown characteristics of models for turn-to-turn, that is surface contact model, were investigated under ac and impulse voltage at 77 K. A material that is Polyimide film (Kapton) 0.025 mm thickness is used for multi wrapping of the electrode. Statistical analysis of the results using Weibull distribution to examine the wrapping number effects on breakdown voltage under at and impulse voltage in $LN_2$ was carried.

A Study of a Conduction Cooling System of a HTS SMES System (고온초전도체 SMES 장치의 전도냉각시스템 연구)

  • Koh, Deuk-Yong;Lee, Kwan-Soo
    • Korean Journal of Air-Conditioning and Refrigeration Engineering
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    • v.19 no.4
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    • pp.328-332
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    • 2007
  • A superconducting magnetic energy storage (SMES) system has shorter response time and longer life time, and is more economical, and environment-friendly than other uninterruptible power supply (UPS). A conduction cooling system is well answer for the high temperature superconductor (HTS) SMES system. Because the conduction cooling system is simple, light and small structure. The purpose of this paper is to design and verify the effective conduction cooling system for the HTS SMES system. The analysis of heat loads in cryostat is performed. Thermal shield heat loads, temperatures of HTS coil surface and conduction Cu plate are estimated and measured.

Fabrication and Test of a 1 MJ Superconducting Energy Storage System for the Sensitive Load (민감부하 보상용 1 MJ 초전도 에너지저장 시스템 제작 및 시험)

  • 성기철;유인근;한성룡;정희종
    • Progress in Superconductivity and Cryogenics
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    • v.3 no.2
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    • pp.39-43
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    • 2001
  • For several decades researches and development on superconducting magnetic energy storage(SMES) system have been done for efficient electric power management. Korea Electrotechnology Research Institute (KERI) have developed of a 1MJ , 300kVA SMES System for improving power quality in sensitive electric loads. It consists of an IGBT (Insulated Gate Bipolar Transistor) based power conversion module. NbTi mixed matrix conductor superconducting magnet and a cryostat with HTS current leads. We developed the code fro design of a SMES magnet. Which could find the parameters of the SMES magnet having minimum amount of superconductors for the same store denerby. and designed the 1 MJ SMES magnet by using it . And we have design and fabricated cryostat with kA class HTS current leads for a 1 MJ SMES System. This paper describes the design fabrication and test results for a 1MJ SMES System.

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Electrical insulating design of 600kJ conduction cooled HTS SMES

  • Choi, Jae-Hyeong;Kwag, Dong-Soon;Cheon, Hyeon-Gweon;Min, Chi-Hyun;Kim, Hae-Jong;Seong, Ki-Chul;Kim, Sang-Hyun
    • Progress in Superconductivity and Cryogenics
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    • v.9 no.2
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    • pp.27-30
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    • 2007
  • The electrical insulation design and withstanding test of mini-model coils for 600 kJ class conduction cooled high temperature superconducting magnetic energy storage (HTS SMES) have been studied in this paper. The high voltage is generated to both ends of magnet of HTS SMES by quench or energy discharge. Therefore, the insulation design of the high voltage needs for commercialization, stability, reliability and so on. In this study, we analyzed the insulation composition of a HTS SMES, and investigated about the insulation characteristics of the materials such as Kapton, AIN and vacuum in cryogenic temperature. Base on these results, the insulation design for 600 kJ conduction cooled HTS SMES was performed. The mini-model was manufactured by the insulation design, and the insulation test was carried out using the mini-model.

Research and Development of Superconducting Magnetic Energy Storage system(SMES)

  • Isojima, Shigeki
    • Electrical & Electronic Materials
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    • v.11 no.10
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    • pp.40-45
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    • 1998
  • This paper describes a collaborative work between SEI and KEPCO on the Superconducting Magnetic Energy Storage system (SMES). We have studied two types of magnets. One is the 400kJ class LTS-SMES for testing the power stabilization operated at liquid helium temperature (4.2K) and the other is the 100J class HTS-SMES for confirming the possibility of applying HTS wire to SMES at liquid nitrogen temperature (77k). In this paper, the design of the magnet and the test results are described. Each magnet performed completely at rated operation.

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