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Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity

Recent applications in need of compact low-frequency deflecting and crabbing cavities have initiated the design and development of new superconducting structures operating at high gradients with low losses. Previously, TM$_{110}$ -type deflecting and crabbing cavities were developed and have also b...

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Detalles Bibliográficos
Autores principales: De Silva, S U, Delayen, Jean Roger
Lenguaje:eng
Publicado: 2013
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevSTAB.16.082001
http://cds.cern.ch/record/2111348
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author De Silva, S U
Delayen, Jean Roger
author_facet De Silva, S U
Delayen, Jean Roger
author_sort De Silva, S U
collection CERN
description Recent applications in need of compact low-frequency deflecting and crabbing cavities have initiated the design and development of new superconducting structures operating at high gradients with low losses. Previously, TM$_{110}$ -type deflecting and crabbing cavities were developed and have also been operated successfully. However, these geometries are not favorable designs for low operating frequencies. The superconducting rf-dipole cavity is the first compact deflecting and crabbing geometry that has demonstrated high gradients and high shunt impedance. Since the fundamental operating mode is the lowest mode and is widely separated from the nearest higher order mode, the rf-dipole design is an attractive geometry for effective damping of the higher order modes in high current applications. A 400 MHz rf-dipole cavity was designed, fabricated, and tested as a proof-of-principle cavity. The cavity achieved high operating gradients, and the multipacting levels were easily processed and did not reoccur.
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spelling cern-21113482022-08-10T20:32:44Zdoi:10.1103/PhysRevSTAB.16.082001http://cds.cern.ch/record/2111348engDe Silva, S UDelayen, Jean RogerCryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing CavityAccelerators and Storage RingsRecent applications in need of compact low-frequency deflecting and crabbing cavities have initiated the design and development of new superconducting structures operating at high gradients with low losses. Previously, TM$_{110}$ -type deflecting and crabbing cavities were developed and have also been operated successfully. However, these geometries are not favorable designs for low operating frequencies. The superconducting rf-dipole cavity is the first compact deflecting and crabbing geometry that has demonstrated high gradients and high shunt impedance. Since the fundamental operating mode is the lowest mode and is widely separated from the nearest higher order mode, the rf-dipole design is an attractive geometry for effective damping of the higher order modes in high current applications. A 400 MHz rf-dipole cavity was designed, fabricated, and tested as a proof-of-principle cavity. The cavity achieved high operating gradients, and the multipacting levels were easily processed and did not reoccur.CERN-ACC-2015-0147oai:cds.cern.ch:21113482013-08-16
spellingShingle Accelerators and Storage Rings
De Silva, S U
Delayen, Jean Roger
Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title_full Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title_fullStr Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title_full_unstemmed Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title_short Cryogenic Test of a Proof-of-Principle Superconducting RF-Dipole Deflecting and Crabbing Cavity
title_sort cryogenic test of a proof-of-principle superconducting rf-dipole deflecting and crabbing cavity
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1103/PhysRevSTAB.16.082001
http://cds.cern.ch/record/2111348
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AT delayenjeanroger cryogenictestofaproofofprinciplesuperconductingrfdipoledeflectingandcrabbingcavity