• Title/Summary/Keyword: superconducting magnet energy storage (SMES)

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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.

Recovery Current Characteristics of the SC conductor for a $\mu$ SMES ($\mu$ SMES용 초전도도체의 회복전류 특성)

  • Kim, H.J.;Seong, K.C.;Cho, J.W.;Lee, E.Y.;Kwon, Y.K.;Ryu, K.S.;Ryu, K.
    • Proceedings of the KIEE Conference
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    • 2000.07b
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    • pp.807-809
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    • 2000
  • We are developing a small-sized superconducting magnetic energy storage ($\mu$ SMES) magnet with the storage capacity of a few megajoules, which provides electric power with high quality to sensitive electric loads. As the earlier step of the fabrication of the $\mu$ SMES magnet, this paper describes recovery current experimental results of a kA class superconductor. Recovery current of a superconductor was tested in two points of copper ratio and cooling effect.

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A Development of 0.5MJ Stabilizing SMES (Superconducting Magnetic Energy Storage) (0.5MJ 안정화용 초전도 에너지 저장장치 개발)

  • Jang, Jong-Kun;Lee, Oon-Hee;Nam, Goong-Do;Choi, In-Hyuk;Hwang, Suk-Young;Lee, Gi-Sik
    • Proceedings of the KIEE Conference
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    • 1994.11a
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    • pp.124-129
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    • 1994
  • We have developed a stabilizing SMES with 0.5MJ energy storage capacity through all the research process of the system planning, magnet drawing, which including various kinds of evaluation for the optimized system organization. This research performance is considered to be very distinguished one. Besides, the acquired knowledge and many experiences getting through the performance of the study are much benefitful to other studies concerning with a development of superconducting electrical power machines. This paper gives the general presentation of the study and many kindes of expermental results including analysis of them.

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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.

Quench Characteristic of the Model Coil for a $\mu$ SMES Magnet ($\mu$ SMES 마그네트용 모델 코일의 ?치 특성)

  • 김해종;성기철;조전욱;김석환;이언용;권영길;류강식;류경우
    • Progress in Superconductivity and Cryogenics
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    • v.3 no.2
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    • pp.5-9
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    • 2001
  • For the development of a small-sized superconducting magnetic energy storage($\mu$SMES) system we designed, fabricated and tested a model coil consisting of five coils with different features. e.g. winding tensions. bore diameters and materials. cooling channels. The results show that even in the highly pre-stressed small coil the quench currents of the coils are degraded to about 70% of their coils critical current. The quench currents of the coils with natrow cooling channels are two times as high as that of the coil without spacers. The test results also indicate that the usual training effect depends on the winding tensions of the coils according to materials of the bobbin.

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Basic Insulation Characteristics of Conduction-Cooled HTS SMES System (전도냉각 고온초전도 SMES 시스템의 기초절연 특성)

  • Choi Jae-Hyeong;Kwang Dong-Soon;Cheon Hyeon-Gweon;Kim Sang-Hyun
    • The Transactions of the Korean Institute of Electrical Engineers C
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    • v.55 no.8
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    • pp.404-410
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    • 2006
  • Toward the practical applications, on operation of conduction-cooled HTS SMES at temperatures well below 40[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. In order to take advantage of a greater critical current density of high temperature superconducting (HTS) and considerably reduce the size and weight of the system, conduction-cooled HTS superconducting magnetic energy storage (SMES) at temperatures well below 40[K] should be investigated. This work focuses on the breakdown and flashover phenomenology of dielectrics exposed in air and/or vacuum for temperatures ranging from room temperature to cryogenic temperature. Firstly, we summarize the insulation factors of the magnet for the conduction cooled HTS SMES. And Secondly a surface flashover as well as volume breakdown in air and/or vacuum with two kind insulators has been investigated. Finally, we will discuss applications for the HTS SMES including aging studies on model coils exposed in vacuum at cryogenic temperature. The commercial application of many conduction-cooled HTS magnets, however, requires refrigeration at temperatures below 40[K], in order to take advantage of a greater critical current density of HTS and reduce considerably the size and weight of the system. The magnet is driven in vacuum condition. The need to reduce the size and weight of the system has led to the consideration of the vacuum as insulating media. We are studying on the insulation factors of the magnet for HTS SMES. And we experiment the spacer configure effect in the dielectric flashover characteristics. From the results, we confirm that our research established basic information in the insulation design of the magnet.

The Electrical Insulation Design of 600kJ Conduction Cooled HTS SMES (600kJ 전도냉각 고온초전도 SMES의 전기절연 설계)

  • 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.3
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    • pp.67-71
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    • 2007
  • The electrical insulation design of 600 kJ conduction cooled high-Tc superconducting magnetic energy storage (SMES) have been studied in this paper. The high voltage is applied to both ends of magnet of high-Tc 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 high-Tc SMES. and investigated about the insulation characteristics of the materials such as Kapton. AIN. $Al_2O_3$. GFRP and vacuum in cryogenic temperature. Base on these results. the insulation design for 600 kJ conduction cooled high-Tc SMES was performed.

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.

Ramp-rate limitation of CIC(Cable-In-Conduit) superconducting magnet (관내권선(Cable-In-Conduit, CIC) 초전도 자석(Superconducting magnet)에서의 한계 자속 변화(ramp-rate limitation) 현상)

  • Jeong, Sang-Kwon
    • Proceedings of the KIEE Conference
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    • 1996.07a
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    • pp.37-40
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    • 1996
  • Cable-In-Conduit Conductor(CICC) is widely accepted as an advanced superconductor configuration for large scale applications such as tokamak fusion reactors, MAGLEV (MAGnetic LEVitation), and SMES (Superconducting Magnetic Energy Storage). The stability of CICC cooled with supercritical helium can be very high if it is operated below a certain limiting current. This limiting current can be determined by Stekly type heat balance equation. The stability characteristic of CICC for AC operation is more complicated than that of DC because there are additional instability sources which are associated with local flux change. Ramp-rate limitation is a phenomenon discovered during US-DPC (United States-Demonstration Poloidal Coil) program, which showed apparent quench current degradation associated with high dB/dt. This paper describes recent experimental investigation results on the ramp-rate limitation and discusses current imbalance, induced current, current redistribution due to local quench of the strand in the cable.

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Thermal analysis of the conduction cooling system for HTS SMES system of 600 kJ class (600kJ급 SMES용 전도냉각시스템 열해석)

  • Hong, Yong-Ju;Yeom, Han-Kil;Park, Seong-Je;Kim, Hyo-Bong;Koh, Deuk-Yong
    • Proceedings of the KSME Conference
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    • 2007.05b
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    • pp.1959-1963
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    • 2007
  • SMES systems need cryogenic cooling systems. Conduction cooling system has more effective, compact structure than cryogen. In general, 2 stage GM cryocoolers are used for conduction cooling of HTS SMES system. 1st stages of cryocoolers are used for the cooling of current leads and radiation shields, and 2nd stages of cryocoolers for HTS coil. For the effective conduction cooling of the HTS SMES system, the temperature difference between the cryocooler and HTS coil should be minimized. In this paper, a cryogenic conduction cooling system for HTS SMES is analyzed to evaluate the performance of the cooling system. The analysis is carried out for the steady state with the heat generation of the HTS coil and effects of the thermal contact resistance. The results show the effects of the heat generation and thermal contact resistance on the temperature distribution.

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