Title :
Feedback Control of Loaded Q Values of the Superconducting Cavities at FLASH
Author :
Cichalewski, W. ; Branlard, J. ; Schlarb, H. ; Carwardine, J. ; Napieralski, A.
Author_Institution :
Dept. of Microelectron. & Comput. Sci., Tech. Univ. of Lodz, Lodz, Poland
Abstract :
The well-established technology of superconducting niobium cavities (TESLA - TeV-Energy Superconducting Linear Accelerator) finds an increasing number of applications for linear accelerators in high-energy physics experiments. Together with cavity design and manufacturing, control systems for accelerating field parameters were developed. The digital control system developed for cryomodule operation at the Free Electron Laser in Hamburg (FLASH) is able to perform field amplitude and phase regulation with the precision requested for the multiple user experiments carried at FLASH and according to the required laser light parameters. While new experiments (like the International Linear Collider or the European X-FEL) are based on the same technology (and similar control systems), they require additional levels of controlling superconducting structures parameters in order to comply with tighter power budget overheads and finer field regulation requirements. Consequently, the possibility of controlling such parameters as cavity loaded quality factor or resonance frequency is becoming more attractive. The necessity and the benefits of regulating these parameters have been described in and . In this paper, we describe the algorithm for feedback control of the loaded Q in TESLA cavities by means of motor control of the fundamental power coupler.
Keywords :
Q-factor; accelerator cavities; accelerator control systems; digital control; feedback; free electron lasers; linear accelerators; niobium; superconducting cavity resonators; European X-FEL; FLASH; International Linear Collider; Nb; TESLA; TeV-energy superconducting linear accelerator; accelerating field parameters; cavity design; cavity loaded quality factor; cavity manufacturing; cryomodule operation; digital control system; feedback control; field amplitude; field regulation; free electron laser; fundamental power coupler; high-energy physics experiments; laser light parameters; loaded Q values; motor control; phase regulation; power budget overheads; resonance frequency; superconducting niobium cavities; superconducting structures; Algorithm design and analysis; Cavity resonators; Feedback control; Q-factor; Feedback control; loaded quality factor control; superconducting cavities;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2013.2287292