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Mon-Af-Po1.11-07 [170]<br />

Design and performance analysis of a cryostat for<br />

pulsed high magnetic field using a small scale helium<br />

liquefaction system<br />

Mengyu Liu, Shaoliang Wang and Liang Li<br />

HUST, Huazhong University of Science & Technology, China<br />

Mon-Af-Po1.11-08 [171]<br />

Design and Research of Cryostat for 3W1 SC Wiggler<br />

Magnet<br />

Miaofu Xu, Rui Ge, Lin Bian and Xiangzhen Zhang<br />

IHEP, Institute of High Energy Physics, CAS, China<br />

Mon-Af-Po1.11-09 [172]<br />

Design and construction of the magnet-cryostat for the<br />

SuperKEKB Interaction Region<br />

Norihito Ohuchi, Yasushi Arimoto, et al.<br />

KEK, Japan<br />

Mon-Af-Po1.11-10 [173]<br />

Cryogenic Oscillating Heat Pipe for Conduction-cooled<br />

Superconducting Magnets<br />

Qing Liang, Yi Li and Qiuliang Wang<br />

Institute of Electrical Engineering, CAS, China<br />

Mon-Af-Po1.11-11 [174]<br />

Cryogen Recondensed Cooling System for Electron<br />

Beam Ion Source Employing 7 T Superconducting Solenoid<br />

Magnet<br />

Su-hun Kim, Se-hee Lee and Seyong Choi<br />

Kyungpook National University, Korea<br />

Mon-Af-Po1.11-12 [175]<br />

Cooling experiment analysis of a prototype thermal siphon<br />

system for single crystal ingot growth magnet<br />

Woo Seung Lee, Kwang Myung Park, Chu Yong, et al.<br />

JH Engineering Corp., Korea<br />

Mon-Af-Po1.11-13 [176]<br />

Speed up the cooling process of superconducting magnets<br />

by applying a large cooling capacity Stirling cryocooler<br />

Xin Qiao, Daming Sun, Ya Xu, Qie Shen, Ning Zhang, et al.<br />

Inst. of Refriger. and Cryogenics, Zhejiang University, China<br />

Mon-Af-Po1.11-14 [177]<br />

Liquid nitrogen level detection method for the safe operation<br />

of onboard cryostats of high-temperature superconducting<br />

maglev vehicles under vibration condition<br />

Yu Ren, Yihuan Xu, Zhang Yulei, Yong Zhang, et al.<br />

Southwest Jiaotong University, China<br />

Mon<br />

71

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