Title :
Magnetic field calculations for a large aperture narrow quadrupole
Author :
Tsoupas, N. ; Jackson, J. ; Lee, Y.Y. ; Raparia, D. ; Wei, J.
Author_Institution :
Brookhaven Nat. Lab., Upton, NY, USA
Abstract :
In the design of high-intensity proton synchrotrons and accumulator rings, quadrupole magnets of narrower size in one of the transverse dimensions are often needed to accommodate the compact ring geometry, the various injection and extraction devices, and the large vacuum chamber aperture. The stringent limit on tolerable beam loss further demands a good magnetic field quality to minimize beam resonances caused by higher-order magnetic multipoles. In this paper, we present results from magnetic field calculations performed on 2D and 3D models of a large-aperture narrow-quadrupoles that is suitable for a high intensity, low beam-loss accumulator rings. The pole face of the quadrupole has been optimized to minimize the integrated field of the first three allowed multipoles (12pole, 20pole and 28pole). The ratio of each integrated magnetic-multipole-strength to the integrated magnetic-quadrupole-strength at a radius of 85% of the quad´s pole-tip-radius is less than 2×10-4. Results from the calculations performed on the two-dimensional and three-dimensional models of the narrow quad are presented.
Keywords :
accelerator magnets; particle beam dynamics; particle beam extraction; particle beam injection; proton accelerators; synchrotrons; accumulator rings; beam resonances; compact ring geometry; extraction device; high-intensity proton synchrotrons; higher-order magnetic multipoles; injection device; integrated magnetic-multipole-strength; integrated magnetic-quadrupole-strength; large aperture narrow quadrupole; magnetic field calculations; magnetic field quality; narrow quad three-dimensional model; narrow quad two-dimensional model; narrow quadrupole three-dimensional model; narrow quadrupole two-dimensional model; pole-tip-radius; quadrupole magnets; stringent limit; tolerable beam loss; vacuum chamber aperture; Apertures; Magnetic fields; Magnetic materials; Magnetic resonance; Magnetization; Magnetostatics; Magnets; Maxwell equations; Poisson equations; Protons;
Conference_Titel :
Particle Accelerator Conference, 2003. PAC 2003. Proceedings of the
Print_ISBN :
0-7803-7738-9
DOI :
10.1109/PAC.2003.1288816