TY - JOUR
T1 - Estimation Method of Optimal Amount of Overshooting Current for Temporal Uniform Magnetic Field in Conduction-Cooled HTS Coils
AU - Miura, Hideaki
AU - Miyazaki, Jun
AU - Ide, Momoe
AU - Miyagi, Daisuke
AU - Tsuda, Makoto
AU - Yokoyama, Shoichi
N1 - Funding Information:
Manuscript received August 28, 2017; accepted February 5, 2018. Date of publication February 13, 2018; date of current version March 5, 2018. This work was supported in part by “Development of Medical Devices and Systems for Advanced Medical Services” from the Ministry of Economy, Trade and Industry, in part by the Japan Agency for Medical Research and Development, and in part by the New Energy and Industrial Technology Development Organization. (Corresponding author: Makoto Tsuda.) H. Miura, J. Miyazaki, M. Ide, D. Miyagi, and M. Tsuda are with the Department of Electrical Engineering, Graduate School of Engineering, Tohoku University, Sendai 980-8579, Japan (e-mail: [email protected]).
Publisher Copyright:
© 2002-2011 IEEE.
PY - 2018/4
Y1 - 2018/4
N2 - We investigated a suitable excitation method to suppress the shielding magnetic flux density attenuation using only the one-time excitation of a REBCO coil, which was cooled by a refrigerator. We investigated the operating temperature and current load factor dependences of the variation rate of the shielding magnetic flux density immediately after an overshooting process. Regardless of the operating temperature and current load factor, the variation rate of the shielding magnetic flux density decreases with the magnitude of overshooting current and changes from a positive value to a negative value. In each current load factor, the ratio of the optimal overshooting current to the critical current of the REBCO coil becomes almost identical regardless of the operating temperature. Based on these results, we devised a suitable overshooting current waveform to suppress the shielding magnetic flux density attenuation in the REBCO coil cooled by the refrigerator. The overshooting current was repeated to the coil in a one-time excitation; the amount of overshooting current was gradually increased until the variation rate of magnetic flux density was changed from positive to negative. Using this current waveform, we can suppress the shielding magnetic flux density attenuation in the conduction-cooled REBCO coil using only a one-time excitation.
AB - We investigated a suitable excitation method to suppress the shielding magnetic flux density attenuation using only the one-time excitation of a REBCO coil, which was cooled by a refrigerator. We investigated the operating temperature and current load factor dependences of the variation rate of the shielding magnetic flux density immediately after an overshooting process. Regardless of the operating temperature and current load factor, the variation rate of the shielding magnetic flux density decreases with the magnitude of overshooting current and changes from a positive value to a negative value. In each current load factor, the ratio of the optimal overshooting current to the critical current of the REBCO coil becomes almost identical regardless of the operating temperature. Based on these results, we devised a suitable overshooting current waveform to suppress the shielding magnetic flux density attenuation in the REBCO coil cooled by the refrigerator. The overshooting current was repeated to the coil in a one-time excitation; the amount of overshooting current was gradually increased until the variation rate of magnetic flux density was changed from positive to negative. Using this current waveform, we can suppress the shielding magnetic flux density attenuation in the conduction-cooled REBCO coil using only a one-time excitation.
KW - HTS coil
KW - MRI
KW - overshoot
KW - REBCO
KW - shielding current
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U2 - 10.1109/TASC.2018.2805688
DO - 10.1109/TASC.2018.2805688
M3 - Article
AN - SCOPUS:85042096762
SN - 1051-8223
VL - 28
JO - IEEE Transactions on Applied Superconductivity
JF - IEEE Transactions on Applied Superconductivity
IS - 3
M1 - 4401705
ER -