Title :
Low-mode coupled bunch feedback channel for PEP-II
Author :
Beckman, L. ; Hassanpour, N. ; Sapozhnikov, L. ; Teytelman, D. ; Fox, J.
Author_Institution :
Stanford Linear Accelerator Center, Menlo Park, CA
Abstract :
Both the HER and LER of PEP-II use broadband longitudinal multi-bunch feedback systems which process all coupled-bunch modes in the machine spanning a 119 MHz bandwidth. Roughly 1 MHz of this bandwidth includes modes driven by impedance related to the RF cavity fundamental. The longitudinal modes within the cavity bandwidth are processed by the all-mode broadband systems, though the correction signal is applied to the beam via a path through the broadband kicker, as well as through a special woofer channel which uses the RF system to apply low-mode correction signals to the beam. As there are two correction paths, with differing group delay and frequency response, yet only one adjustable processing channel, it is difficult to get an optimal low-frequency ("woofer") response if the broadband feedback path is configured to best control HOM driven instabilities. A new low-mode processing channel has been designed to provide an independent means of providing the low-mode correction signal. It is a digital channel, operating at a 10 MHz sampling rate, and incorporating programmable 12 tap FIR control filters. This channel, implemented using EPLD technology, allows more optimal gain and phase adjustment of the woofer control path, with lower group delay allowing higher gain. This extra flexibility and higher gain will be useful in future high-current PEP-II operation. The design of the control channel is illustrated, and a possible control filter with system dynamics is described
Keywords :
FIR filters; accelerator RF systems; accelerator cavities; beam handling techniques; electron accelerators; particle beam bunching; storage rings; 10 MHz; 119 MHz; EPLD technology; FIR control filters; HOM driven instabilities; PEP-II; RF cavity; all-mode broadband systems; broadband feedback path; broadband kicker; broadband longitudinal multibunch feedback systems; cavity bandwidth; low-mode correction signals; low-mode coupled bunch feedback channel; low-mode processing channel; optimal low-frequency woofer response; woofer channel; woofer control path; Bandwidth; Control systems; Delay; Feedback; Finite impulse response filter; Impedance; Optimal control; RF signals; Radio frequency; Signal processing;
Conference_Titel :
Particle Accelerator Conference, 2003. PAC 2003. Proceedings of the
Conference_Location :
Portland, OR
Print_ISBN :
0-7803-7738-9
DOI :
10.1109/PAC.2003.1289924