Title :
Power-Handling Capability of Superconducting Filters Using Disk- and Ring-Type Bulk Resonators
Author :
Kato, Tomoki ; Saito, Atsushi ; Tsurui, Ryota ; Teshima, Hidekazu ; Ohshima, Shigetoshi
Author_Institution :
Grad. Sch. of Sci. & Eng., Yamagata Univ., Yonezawa, Japan
Abstract :
The critical current of a bulk resonator is larger than that of a thin film resonator. Therefore, we investigated a transmitting filter that uses high temperature bulk superconducting resonators to increase their power-handling capability. We designed disk- and ring-type 3-pole bulk superconducting resonator filters using MW-studio software and calculated the current density distribution. From the simulation, the power-handling capability of the disk-type bulk filter was found to be approximately 1.3 times that of the ring-type bulk filter. These filters were fabricated and tested. The frequency response and the power-handling capability were measured at 20 K. The filters showed band-pass properties. The power-handling capability of the disk-type bulk filter was 41.7 W and that of the ring-type bulk filter was 26.6 W. Therefore, the disk-type filter had an approximately 1.6 times higher power-handling capability than did the ring-type filter.
Keywords :
band-pass filters; barium compounds; critical current density (superconductivity); gadolinium compounds; high-temperature superconductors; superconducting filters; superconducting resonators; GdBa2Cu3Oy; MW-studio software; band-pass properties; critical current; current density distribution; disk-type bulk resonators; high-temperature bulk superconducting resonators; power 26.6 W; power 41.7 W; power handling capability; ring-type bulk resonators; superconducting resonator filters; temperature 20 K; thin film resonator; transmitting filter; Band-pass filters; Couplings; High-temperature superconductors; Microwave filters; Resonator filters; Substrates; Superconducting filters; Bulk resonator; bulk resonator; disk filter; ring filter; superconducting filters; transmitting filters;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2014.2377251