Title :
Influence of inter-strand electrical and thermal conductivity on stability of Rutherford cables in accelerator magnets
Author :
Lei, Yuanzhong ; Yu, Yunjia ; Nan, Heli ; Dai, Yinming ; Wang, Qiuliang
Author_Institution :
Inst. of Electr. Eng., Chinese Acad. of Sci., Beijing, China
fDate :
6/1/2004 12:00:00 AM
Abstract :
Influence of inter-strand electrical and thermal conductivity on stability of multi-strand superconducting cables is studied theoretically based on a 3-strand cable model. The simulation model takes into account transient heat-transfer characteristics between strand surface and helium, inter-strand current sharing, heat conduction as well as variation of thermal physical properties with temperature and magnetic field. Minimum quench energy is calculated both in case of uniform current distribution and in the case of nonuniform current distribution. The results show that the influence of inter-strand electrical conductivity on minimum quench energy increases as the nonuniformity of current distribution increases. Calculations were performed in view of the special situation of Rutherford cables in dipole magnets for particle accelerators. The results demonstrated that differences in inter-strand contact properties could lead to evident different ramp-rate limitation behavior. It is concluded that serious ramp-rate limitation problem could be avoided by keeping inter-strand electrical and thermal conductivity in a proper range.
Keywords :
accelerator magnets; current distribution; electrical conductivity; heat conduction; multifilamentary superconductors; superconducting cables; thermal conductivity; 3-strand cable model; He; Rutherford cables; accelerator magnets; current distribution; dipole magnets; heat conduction; inter-strand contact properties; inter-strand current sharing; inter-strand electrical conductivity; minimum quench energy; particle accelerators; ramp-rate limitation problem; stability; strand surface; thermal conductivity; thermal physical properties; transient heat-transfer characteristics; Accelerator magnets; Current distribution; Helium; Linear particle accelerator; Magnetic fields; Magnetic properties; Superconducting cables; Temperature; Thermal conductivity; Thermal stability; Accelerator magnets; inter-strand contact property; nonuniform current distribution; stability; superconducting cables;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2004.830572