Title :
Properties of a transverse damping system, calculated by a simple matrix formalism
Author :
Koscielniak, S. ; Tran, H.J.
Author_Institution :
TRIUMF, Vancouver, BC, Canada
Abstract :
In a synchrotron, proton beams with injection steering errors perform coherent betatron oscillations, possibly of large amplitude. The oscillations may be damped by using a system of a beam position monitor and a variable, fast kicker combined in a feedback loop to form a `transverse damper´. The system of ring, beam and damper can be modeled by iteration of a matrix mapping once per turn. This paper reports the calculation of damping rates, and coherent tune shifts by analytic solution of the recursions. Two cases are treated: (i) kick proportional to beam displacement; and (ii) `bang-bang´ damping in which, above a certain threshold, the kick depends only on the sign (+/-) of the displacement. We demonstrate (under certain conditions) that the `bang-bang´ scheme provides a linear damping of the amplitude and no tune shift, and (for the same peak power) is faster than the conventional proportional damper which produces an exponential damping with time
Keywords :
beam handling techniques; particle beam diagnostics; bang-bang damping; beam displacement; beam position monitor; coherent betatron oscillations; coherent tune shifts; exponential damping; feedback loop; injection steering errors; iteration; linear damping; matrix formalism; matrix mapping; proportional damper; proton beams; synchrotron; transverse damper; transverse damping system; tune shift; variable fast kicker; Acceleration; Damping; Monitoring; Nonlinear optics; Optical feedback; Optical saturation; Particle beam injection; Particle beams; Shock absorbers; Synchrotrons;
Conference_Titel :
Particle Accelerator Conference, 1995., Proceedings of the 1995
Conference_Location :
Dallas, TX
Print_ISBN :
0-7803-2934-1
DOI :
10.1109/PAC.1995.505867