DocumentCode :
2901091
Title :
Superconducting materials testing with a high-Q copper RF cavity
Author :
Tantawi, S.G. ; Dolgashev, V. ; Bowden, G. ; Lewandowski, J. ; Nantista, C.D. ; Canabal, A. ; Tajima, T. ; Campisi, I.E.
Author_Institution :
SLAC, Menlo Park
fYear :
2007
fDate :
25-29 June 2007
Firstpage :
2370
Lastpage :
2372
Abstract :
Superconducting RF is of increasing importance in particle accelerators. We have developed a resonant cavity with high quality factor and an interchangeable wall for testing of superconducting materials. A compact TE01 mode launcher attached to the coupling iris selectively excites the azimuthally symmetric cavity mode, which allows a gap at the detachable wall and is free of surface electric fields that could cause field emission, multipactor, and RF breakdown. The shape of the cavity is tailored to focus magnetic field on the test sample. We describe cryogenic experiments conducted with this cavity. An initial experiment with copper benchmarked our apparatus. This was followed by tests with Nb and MgB2. In addition to characterizing the onset of superconductivity with temperature, our cavity can be resonated with a high power klystron to determine the surface magnetic field level sustainable by the material in the superconducting state. A feedback code is used to make the low level RF drive track the resonant frequency.
Keywords :
Q-factor; accelerator RF systems; accelerator control systems; copper; field emission; magnesium compounds; materials testing; microwave switches; niobium; particle accelerator accessories; superconducting cavity resonators; type II superconductors; RF breakdown; TE01 mode launcher; azimuthally symmetric cavity mode; coupling iris; cryogenic experiments; field emission; high power klystron; high-Q copper RF cavity; magnetic field focus; multipactor; particle accelerators; quality factor; resonant cavity; resonant frequency; superconducting RF; superconducting materials testing; superconducting state; superconductivity onset; surface electric fields; surface magnetic field level; Copper; Iris; Linear particle accelerator; Magnetic fields; Magnetic materials; Materials testing; Q factor; Radio frequency; Resonance; Superconducting materials;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Particle Accelerator Conference, 2007. PAC. IEEE
Conference_Location :
Albuquerque, NM
Print_ISBN :
978-1-4244-0916-7
Type :
conf
DOI :
10.1109/PAC.2007.4441253
Filename :
4441253
Link To Document :
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