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  • Open Access

Coupling impedances of a resistive insert in a vacuum chamber

Yoshihiro Shobuda

Yong Ho Chin and Koji Takata

  • JAEA, Japan Atomic Energy Agency, 2-4 Shirakata Shirane, Tokaimura, Nakagun, Ibaraki 319-1195, Japan

  • KEK, High Energy Accelerator Research Organization, 1-1 Oho, Tsukuba, Ibaraki 305-0801, Japan

Phys. Rev. ST Accel. Beams 12, 094401 – Published 17 September, 2009

DOI: https://doi.org/10.1103/PhysRevSTAB.12.094401

Abstract

We have developed a theory to calculate both longitudinal and transverse impedances of a resistive short (typically shorter than the chamber radius) insert with cylindrical symmetry, sandwiched by perfectly conductive chambers on both sides. It is found that unless the insert becomes extremely thin (typically a few nm for a metallic insert) the entire image current runs on the thin insert, even in the frequency range where the skin depth exceeds the insert thickness, and therefore the impedance increases drastically from the conventional resistive-wall impedance. In other words, the wakefields do not leak out of the insert unless it is extremely thin. Formulas of the impedance valid for various cases of the insert are categorized in summary.

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References (18)

  1. M. Ivanyan and V. Tsakanov, in Proceedings of the 8th European Particle Accelerator Conference, Paris, 2002 (EPS-IGA and CERN, Geneva, 2002), p. 1511.
  2. S. Krinsky, B. Podobedov, and R. L. Gluckstern, Phys. Rev. ST Accel. Beams 7, 114401 (2004).
  3. G. Stupakov, Phys. Rev. ST Accel. Beams 8, 044401 (2005).
  4. R. L. Gluckstern and B. Zotter, Report No. CERN-AB-2008-045, 2008.
  5. J. Laslett, K. Neil, and A. Sessler, Rev. Sci. Instrum. 36, 436 (1965).
  6. B. W. Zotter and S. A. Kheifets, Impedances and Wakes in High-Energy Particle Accelerators (World Scientific, Singapore, 1998).
  7. A. W. Chao, Physics of Collective Beam Instabilities in High Energy Accelerators (Wiley, New York, 1993).
  8. Handbook of Accelerator Physics and Engineering, edited by A. W. Chao and M. Tigner (World Scientific, Singapore, 1999).
  9. A. Burov and V. Lebedev, in Proceedings of the 8th European Particle Accelerator Conference, Paris, 2002 (Ref. [1]), p. 1452.
  10. E. Metral, B. Zotter, and B. Salvant, in Proceedings of the 2007 Particle Accelerator Conference, Albuquerque, New Mexico, 2007 (IEEE, Albuquerque, New Mexico, 2007), p. 4216.
  11. E. Metral, Report No. CERN-AB-2005-084, 2005.
  12. Y. Shobuda, Y. H. Chin, and K. Takata, Phys. Rev. ST Accel. Beams 10, 044403 (2007).
  13. S. Silver and W. K. Saunders, J. Appl. Phys. 21, 153 (1950).
  14. See, e.g., J. K. Jackson, Classical Electrodynamics (Wiley, New York, 1998), p. 312.
  15. K. Bane and M. Sands, Part. Accel. 25, 73 (1990).
  16. W. Panofsky and W. Wenzel, Rev. Sci. Instrum. 27, 967 (1956).
  17. R. L. Gluckstern and R. Li, Part. Accel. 29, 159 (1990).
  18. M. Abramowitz and I. Stegun, Handbook of Mathematical Functions-With Formulas, Graphs, and Mathematical Tables (Dover, New York, 1974).

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