Title :
Coupled Analysis and Protection of the HTS DC Magnet for DC Induction Heater in Dynamic Disturbance
Author :
Xu, D. ; Wang, Y. ; Li, Z.Y. ; Gao, H. ; Hong, Z. ; Jin, Z.
Author_Institution :
Dept. of Electr. Eng., Shanghai Jiao Tong Univ., Shanghai, China
Abstract :
Designing a high temperature superconducting (HTS) DC induction heater requires the HTS magnet to be equipped with an HTS coil, iron core and air gap. A large amount of magnetic energy is stored in the iron core and must be transferred outside the magnet during system collapses. The nature of the operating conditions and dynamic heating processes make the magnet coil a substantial nonlinear inductive load for the power supply which can result in system collapse and potentially damage the peripheral circuit of the magnet. Therefore, a protection system is recommended for this magnet. This paper proposes an active protection system for a DC HTS induction heater composed of a magnet with an iron core and YBCO coated conductor (CC) tape. A Matlab/Simulink-based simulation model was coupled with a Comsol-based finite element method model to combine the electrical and electromagnetic characteristics to optimize the design configuration of the protection circuit. Experiments with different magnet operating currents and dump resistors were carried out to verify the feasibility of this proposed protection system for magnets with and without an iron core. The results show that the proposed scheme performs within desired specifications and that the dissipation efficiency and velocity vary depending upon different values of the dump resistor.
Keywords :
air gaps; finite element analysis; induction heating; superconducting devices; CC tape; Comsol-based finite element method; FEM; HTS coil; Matlab-Simulink-based simulation model; YBCO coated conductor tape; air gap; coupled analysis; dc induction heater; dc magnet protection; design configuration; dissipation efficiency; dissipation velocity; dump resistors; dynamic disturbance; dynamic heating processes; electrical characteristics; electromagnetic characteristics; high temperature superconducting induction heater; iron core; magnet operating currents; magnetic energy; operating conditions; peripheral circuit; protection circuit; Coils; Iron; Magnetic circuits; Magnetic cores; Magnetic flux; Resistors; Superconducting magnets; Active protection; HTS Magnet; HTS induction heater; HTS magnet; detect and dump; high temperature superconducting (HTS) induction heater; iron core;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2375576