DocumentCode :
377705
Title :
Muon capture and cooling dynamics, capture in solenoidal channels
Author :
Penn, G.
Author_Institution :
California Univ., Berkeley, CA, USA
Volume :
1
fYear :
2001
fDate :
2001
Firstpage :
132
Abstract :
Ionization cooling is a crucial component of either a muon collider or a neutrino factory based on muon decays. It determines the number of muons, per proton on target, that fall into the acceptance of the accelerator and storage ring. Current studies of cooling channels predominantly use simulations which track many particles, an often time consuming procedure. Analytic models [K.-J. Kim and C.X. Wang, Phys. Rev. Lett. 85(4):760-763; G. Penn and J.S. Wurtele, Phys. Rev. Lett. 85(4):764-767] using equations for the beam moments have been developed. These dynamic equations, similar to the Courant-Snyder description of quadrupole focusing, incorporate the basic aspects of ionization cooling: energy loss and scattering in material, acceleration by radio frequency (RF) cavities, and focusing in solenoid magnets. The moments method is compared to simulations and shown to provide for a reasonable prediction of the percentage of muons captured within a defined lattice acceptance, which is the figure of merit that is customarily used for evaluating the performance of cooling channels in simulations. The moments method is used to evaluate the impact on channel performance of engineering constraints and beam structure
Keywords :
accelerator RF systems; accelerator cavities; accelerator magnets; colliding beam accelerators; electromagnets; electron beam focusing; energy loss of particles; method of moments; muon capture; particle beam dynamics; storage rings; Courant-Snyder description; RF cavities; beam moments; cooling dynamics; energy loss; ionization cooling; lattice acceptance; moments method; muon capture; muon collider; quadrupole focusing; solenoidal channels; storage ring; Cooling; Equations; Ionization; Magnetic materials; Mesons; Moment methods; Muon colliders; Neutrino sources; Predictive models; Radio frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Particle Accelerator Conference, 2001. PAC 2001. Proceedings of the 2001
Conference_Location :
Chicago, IL
Print_ISBN :
0-7803-7191-7
Type :
conf
DOI :
10.1109/PAC.2001.987451
Filename :
987451
Link To Document :
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