Thermal Design of the Conduction-Cooled High Temperature Superconducting Magnet for Pulsating Magnetic Field

被引:3
作者
Kwon, Dohoon [1 ]
Kim, Bokeum [1 ]
Choi, Jongho [2 ]
Jeong, Sangkwon [1 ]
Kim, Seokho [2 ]
机构
[1] Korea Adv Inst Sci & Technol, Mech Engn Dept, Daejeon 34141, South Korea
[2] Changwon Natl Univ South Korea, Sch Mechatron Engn Sarim dong, Div Mechatron Engn, Uichang Gu,Changwon Si, Chang Won 641773, Gyeongsangnamdo, South Korea
基金
新加坡国家研究基金会;
关键词
Superconducting magnets; Thermal conductivity; High-temperature superconductors; Conductors; Magnetic hysteresis; Copper; Flanges; AC loss; HTS magnets; Thermal analysis; ADR;
D O I
10.1109/TASC.2023.3241831
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
conduction-cooled high temperature superconducting (HTS) solenoid is fabricated to produce pulsating 4 T magnetic field for magnetic refrigeration. HTS conductor of 245 m is wound as a solenoid with 112 layers each of which consists of 12 turns of the conductor. For a stable ramping operation of the magnet, AC loss inside the winding pack should be effectively rejected to the heat sink. The thermal drains are inserted between the layers and connected to the magnet flange which is cooled by a commercial two-stage Gifford-McMahon cooler. They are made of Oxygen-Free High Conductivity (OFHC) copper, and has a width of 6 mm and a thickness of 50 mu m. Thermal analysis is conducted to confirm the effect of the thermal drain on the AC loss heat rejection. AC loss of the magnet is estimated by using T-A formulation (current vector potential T and magnetic vector potential A). The ramp rate of the magnet and the heat sink temperature are set to 0.1 T/s and 4.5 K, respectively. In the thermal diffusion calculation, each winding layer is considered as the lumped capacitance. In addition, thermal conduction between the adjacent layers and that through the thermal drains are considered. The thermal analysis confirms that the conductor temperature of the winding is maintained lower than the operating limit of 20 K. Based on the results of the thermal analysis, the stable pulsating operation of the conduction-cooled superconducting magnet is predicted to be feasible and is also confirmed by the experiment.
引用
收藏
页数:7
相关论文
共 25 条
[1]  
Barron RF, 1985, Cryogenic systems
[2]   QUENCH PROPAGATION IN HIGH T-C SUPERCONDUCTORS [J].
BELLIS, RH ;
IWASA, Y .
CRYOGENICS, 1994, 34 (02) :129-144
[3]   Thermal conductivity of Kapton tape [J].
Benford, DJ ;
Powers, TJ ;
Moseley, SH .
CRYOGENICS, 1999, 39 (01) :93-95
[4]   T-A-Formulation to Model Electrical Machines With HTS Coated Conductor Coils [J].
Benkel, Tara ;
Lao, Mayraluna ;
Liu, Yingzhen ;
Pardo, Enric ;
Wolfstadter, Simon ;
Reis, Thomas ;
Grilli, Francesco .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2020, 30 (06)
[5]  
Bradley P.E., 2013, CRC Handb. Chem. Phys
[6]   TYPE-II-SUPERCONDUCTOR STRIP WITH CURRENT IN A PERPENDICULAR MAGNETIC-FIELD [J].
BRANDT, EH ;
INDENBOM, M .
PHYSICAL REVIEW B, 1993, 48 (17) :12893-12906
[7]  
Duthil P, 2015, Arxiv, DOI arXiv:1501.07100
[8]   Thermal boundary resistance of mechanical contacts between solids at sub-ambient temperatures [J].
Gmelin, E ;
Asen-Palmer, M ;
Reuther, M ;
Villar, R .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1999, 32 (06) :R19-R43
[9]   Transport AC Loss Measurements of a Triangular Epoxy-Impregnated High-Temperature Superconducting Coil [J].
Hu, Di ;
Ainslie, Mark D. ;
Kvitkovic, Jozef ;
Kim, Jingeun ;
Kim, Chul ;
Pamidi, Sastry ;
Zhou, Difan ;
Rush, Jordan P. ;
Durrell, John H. .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2017, 27 (04)
[10]  
I. Guide, 1998, COMS MULT, P204