TY - JOUR
T1 - AC losses and heat removal in three-dimensional winding pack of Samsung superconducting test facility under pulsed magnetic field operation
AU - Wang, Qiuliang
AU - Yoon, Cheon Seong
AU - Baang, Sungkeun
AU - Kim, Myungkyu
AU - Park, Hyunki
AU - Kim, Yongjin
AU - Lee, Sangil
AU - Kim, Keeman
PY - 2001
Y1 - 2001
N2 - The Samsung superconducting test facility (SSTF) will be operated under the highly pulsed field to simulate the operating conditions of KSTAR. An analysis has been performed to study the transient heat removal characteristics and temperature margin for the main, blip and compensating coils in the SSTF. This method is based on a quasi-three-dimensional model, which the thermal coupling of turn-to-turn, pancake-to-pancake and channel-to-channel is taken into account, to simulate the conductor temperature rise and the thermal expansion of supercritical helium due to the high AC losses under the pulsed field. The local AC losses, which include coupling loss, eddy current loss and hysteresis loss in the cable-in-conduit conductor, are estimated. The temperature margin, mass flow rate, distribution of AC losses are studied under the given operating scenario. The mass flow reduction and peak temperature rise depending on the inlet pressure and inlet position of CICC are studied. It is shown that the initial mass flow rate remarkably influences on the peak temperature of superconducting strands. The large mass flow rate can reduce the temperature rise when the inlet of helium is located at the high field region. By contrast, because of heat induced flow to improve the cooling condition of the superconducting strands, the small initial mass flow rate results in the low peak temperature in strands when the inlet of helium is located at the low field region.
AB - The Samsung superconducting test facility (SSTF) will be operated under the highly pulsed field to simulate the operating conditions of KSTAR. An analysis has been performed to study the transient heat removal characteristics and temperature margin for the main, blip and compensating coils in the SSTF. This method is based on a quasi-three-dimensional model, which the thermal coupling of turn-to-turn, pancake-to-pancake and channel-to-channel is taken into account, to simulate the conductor temperature rise and the thermal expansion of supercritical helium due to the high AC losses under the pulsed field. The local AC losses, which include coupling loss, eddy current loss and hysteresis loss in the cable-in-conduit conductor, are estimated. The temperature margin, mass flow rate, distribution of AC losses are studied under the given operating scenario. The mass flow reduction and peak temperature rise depending on the inlet pressure and inlet position of CICC are studied. It is shown that the initial mass flow rate remarkably influences on the peak temperature of superconducting strands. The large mass flow rate can reduce the temperature rise when the inlet of helium is located at the high field region. By contrast, because of heat induced flow to improve the cooling condition of the superconducting strands, the small initial mass flow rate results in the low peak temperature in strands when the inlet of helium is located at the low field region.
KW - AC losses
KW - CICC
KW - Quasi-three-dimensional model
KW - Superconducting magnet
KW - Test facility
KW - Transient thermal analysis
UR - https://www.scopus.com/pages/publications/0034870833
U2 - 10.1016/S0011-2275(01)00097-2
DO - 10.1016/S0011-2275(01)00097-2
M3 - 文章
AN - SCOPUS:0034870833
SN - 0011-2275
VL - 41
SP - 253
EP - 265
JO - Cryogenics
JF - Cryogenics
IS - 4
ER -