Paper |
Title |
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WEPAB138 |
Prototyping High-Gradient mm-Wave Accelerating Structures |
2902 |
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- E.A. Nanni, V.A. Dolgashev, A.A. Haase, J. Neilson, S.G. Tantawi
SLAC, Menlo Park, California, USA
- S.C. Schaub
MIT, Cambridge, Massachusetts, USA
- B. Spataro
INFN/LNF, Frascati (Roma), Italy
- R.J. Temkin
MIT/PSFC, Cambridge, Massachusetts, USA
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We present single-cell accelerating structures designed for high-gradient testing at 110 GHz. The purpose of this work is to study the basic physics of ultrahigh vacuum RF breakdown in high-gradient RF accelerators. The accelerating structures are pi-mode standing-wave cavities fed with a TM01 circular waveguide. The structures are fabricated using precision milling out of two metal blocks, and the blocks are joined with diffusion bonding and brazing. The impact of fabrication and joining techniques on the cell geometry and RF performance will be discussed. First prototypes had a measured Qo of 2800, approaching the theoretical design value of 3300. The geometry of these accelerating structures are as close as practical to single-cell standing-wave X-band accelerating structures more than 40 of which were tested at SLAC. This wealth of X-band data will serve as a baseline for these 110 GHz tests. The structures will be powered with short pulses from a MW gyrotron oscillator. RF power of 1 MW may allow us to reach an accelerating gradient of 400 MeV/m.
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DOI • |
reference for this paper
※ https://doi.org/10.18429/JACoW-IPAC2017-WEPAB138
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THPAB020 |
Coupling Impedances and Collective Effects for FCC-ee |
3734 |
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- E. Belli, M. Migliorati
University of Rome La Sapienza, Rome, Italy
- G. Castorina, B. Spataro, M. Zobov
INFN/LNF, Frascati (Roma), Italy
- A. Novokhatski
SLAC, Menlo Park, California, USA
- S. Persichelli
LBNL, Berkeley, California, USA
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A very important issue for the Future Circular Collider (FCC) is represented by collective effects due to the self-induced electromagnetic fields, which, acting back on the beam, could produce dangerous instabilities. In this paper we will focus our work on the FCC electron-positron machine: in particular we will study some important sources of wake fields, their coupling impedances and the impact on the beam dynamics. We will also discuss longitudinal and transverse instability thresholds, both for single bunch and multibunch, and indicate some ways to mitigate such instabilities.
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DOI • |
reference for this paper
※ https://doi.org/10.18429/JACoW-IPAC2017-THPAB020
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Export • |
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