• DocumentCode
    2902096
  • Title

    Conceptual design of an L-band recirculating superconducting traveling wave accelerating structure for ILC

  • Author

    Avrakhov, P. ; Kanareykin, A. ; Liu, Z. ; Kazakov, S. ; Solyak, N. ; Yakovlev, Victor ; Gai, W.

  • Author_Institution
    Euclid Techlabs LLC, Rockville
  • fYear
    2007
  • fDate
    25-29 June 2007
  • Firstpage
    2538
  • Lastpage
    2540
  • Abstract
    With this paper, we propose the conceptual design of a traveling wave accelerating structure for a superconducting accelerator. The overall goal is to study a traveling wave (TW) superconducting accelerating structure for ILC that allows an increased accelerating gradient and, therefore reduction of the length of the collider. The conceptual studies were performed in order to optimize the acceleration structure design by minimizing the surface fields inside the cavity of the structure, to make the design compatible with existing technology, and to determine the maximum achievable gain in the accelerating gradient. The proposed solution considers RF feedback system redirecting the accelerating wave that passed through the superconducting traveling wave acceleration (STWA) section back to the input of the accelerating structure. The STWA structure has more cells per unit length than a TESLA structure but provides an accelerating gradient higher than a TESLA structure, consequently reducing the cost. In this paper, the STWA cell shape optimization, coupler cell design and feedback waveguide solution are considered. We also discuss the field flatness in the superconducting TW structure, the HOM modes and multipactor performance have been studied as well. The proposed TW structure design gives an overall 46% gain over the SW ILC structure if the 10 m long TW structure is employed.
  • Keywords
    accelerator RF systems; accelerator cavities; feedback; linear colliders; ILC; L-band recirculating superconducting traveling wave accelerating structure; RF feedback system; TESLA structure; accelerating gradient; cavity surface fields; coupler cell design; feedback waveguide solution; Acceleration; Accelerator magnets; Costs; Design optimization; Feedback; L-band; Laboratories; Magnetic fields; Radio frequency; Shape;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Particle Accelerator Conference, 2007. PAC. IEEE
  • Conference_Location
    Albuquerque, NM
  • Print_ISBN
    978-1-4244-0916-7
  • Type

    conf

  • DOI
    10.1109/PAC.2007.4441309
  • Filename
    4441309