TY - JOUR
T1 - Experiments on the Effects of Local Normal Transitions in Multi-Stacked No-Insulation REBCO Pancake Coils
AU - Ichikawa, Tetsuri
AU - Kakimoto, Yuta
AU - Onoshita, Haruka
AU - Kinpara, Tetsuro
AU - Noguchi, So
AU - Nagaya, Shigeo
AU - Watanabe, Tomonori
AU - Ishiyama, Atsushi
N1 - Funding Information:
Manuscript received October 27, 2018; accepted February 20, 2019. Date of publication February 27, 2019; date of current version May 23, 2019. This work was supported in part by a Grant-in-Aid for Scientific Research (A) (No. 26249036) and in part by a Grant-in-Aid for Scientific Research (S) (No. 18H05244) from the Ministry of Education, Science, Sports, and Culture. (Corresponding author: Tetsuri Ichikawa.) T. Ichikawa, Y. Kakimoto, H. Onoshita, T. Kinpara, and A. Ishiyama are with Waseda University, Shinjuku-ku, Tokyo 169-8555, Japan (e-mail:, tetsuri0127@akane.waseda.jp; atsushi@waseda.jp).
Publisher Copyright:
© 2019 IEEE.
PY - 2019/8
Y1 - 2019/8
N2 - No-insulation (NI) coils are an important technique for high-field magnetic resonance imaging (MRI). One of the technical issues with NI coils is their thermal and electromagnetic behavior when a local normal transition occurs. Given that multiple stacked coils are used in MRI, the interaction between coils must also be investigated, because a local normal transition may affect the other NI coils through magnetic coupling. In fact, when a local normal transition occurs, there is a possibility that large electromagnetic forces are applied to the other coils, or quench may be induced in some of them. Even though overcurrent tests of stacked NI coils have been conducted, the results are not helpful in actual MRI operation. In this study, we investigate the effects of the occurrence of a local normal transition in multi-stacked NI coil systems under conditions similar to those of actual operation, with a constant transport current below the coil's Ic. The occurrence of a local normal transition is simulated by applying current to a heater inserted in manufactured small NI double pancake coils. To evaluate the interaction between NI coils, the voltage and changes in the generated magnetic field are measured at each coil. We also show the current distribution in the coils, as obtained by the partial element equivalent circuit method. The obtained results allow us to evaluate the interaction of the NI coils and evaluate coil protection methods.
AB - No-insulation (NI) coils are an important technique for high-field magnetic resonance imaging (MRI). One of the technical issues with NI coils is their thermal and electromagnetic behavior when a local normal transition occurs. Given that multiple stacked coils are used in MRI, the interaction between coils must also be investigated, because a local normal transition may affect the other NI coils through magnetic coupling. In fact, when a local normal transition occurs, there is a possibility that large electromagnetic forces are applied to the other coils, or quench may be induced in some of them. Even though overcurrent tests of stacked NI coils have been conducted, the results are not helpful in actual MRI operation. In this study, we investigate the effects of the occurrence of a local normal transition in multi-stacked NI coil systems under conditions similar to those of actual operation, with a constant transport current below the coil's Ic. The occurrence of a local normal transition is simulated by applying current to a heater inserted in manufactured small NI double pancake coils. To evaluate the interaction between NI coils, the voltage and changes in the generated magnetic field are measured at each coil. We also show the current distribution in the coils, as obtained by the partial element equivalent circuit method. The obtained results allow us to evaluate the interaction of the NI coils and evaluate coil protection methods.
KW - Coil protection
KW - HTS coil
KW - high-field MRI
KW - local normal transition
KW - multi-stacked no-insulation coil
KW - partial element equivalent circuit (PEEC) model
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U2 - 10.1109/TASC.2019.2901956
DO - 10.1109/TASC.2019.2901956
M3 - Article
AN - SCOPUS:85066821460
SN - 1051-8223
VL - 29
JO - IEEE Transactions on Applied Superconductivity
JF - IEEE Transactions on Applied Superconductivity
IS - 5
M1 - 8653863
ER -