DocumentCode :
1960569
Title :
Design of the detuned accelerator structure
Author :
Wang, J.W. ; Nelson, E.M.
Author_Institution :
Stanford Linear Accel. Center, Stanford Univ., CA, USA
fYear :
1993
fDate :
17-20 May 1993
Firstpage :
1086
Abstract :
This is a summary of the design procedure for the detuned accelerator structure for SLAC´s Next Linear Collider program. The 11.424 GHz accelerating mode of each cavity must be synchronous with the beam. The distribution of the disk thicknesses and lowest synchronous dipole mode frequencies of the cavities in the structure is Gaussian in order to reduce the effect of wake fields. The finite element field solver YAP calculated the accelerating mode frequency and the lowest synchronous dipole mode frequency for various cavity diameters, aperture diameters and disk thicknesses. Polynomial 3-parameter fits are used to calculate the dimensions for a 1.8 m detuned structure. The program SUPERFISH was used to calculate the shunt impedances, quality factors and group velocities. The RF parameters of the section like filling time, attenuation factor, accelerating gradient and maximum surface field along the section are evaluated. Error estimates are discussed and comparisons with conventional constant gradient and constant impedance structures are be presented
Keywords :
beam handling equipment; cavity resonators; electron accelerators; linear accelerators; NLC; Next Linear Collider; SUPERFISH; accelerating gradient; accelerating mode frequency; aperture diameters; attenuation factor; detuned accelerator structure; filling time; finite element field solver; group velocities; lowest synchronous dipole mode frequencies; maximum surface field; quality factors; shunt impedances; wake fields; Acceleration; Apertures; Colliding beam accelerators; Finite element methods; Frequency; Linear accelerators; Particle beams; Polynomials; Q factor; Surface impedance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Particle Accelerator Conference, 1993., Proceedings of the 1993
Conference_Location :
Washington, DC
Print_ISBN :
0-7803-1203-1
Type :
conf
DOI :
10.1109/PAC.1993.308675
Filename :
308675
Link To Document :
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