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Machining and Characterizing X-Band RF-Structures for CLIC

The Compact Linear Collider (CLIC) is currently under study at CERN as a potential multi-TeV e+e– collider. The manufacturing and assembling tolerances for making the required RF components are essential for CLIC to perform efficiently. Machining techniques are relevant to the construction of ultra...

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Autores principales: Atieh, S, Aicheler, M, Arnau-Izquierdo, G, Cherif, A, Deparis, L, Glaude, D, Remandet, L, Riddone, G, Scheubel, M, Gudkov, D, Samoshkin, A, Soldko, A
Lenguaje:eng
Publicado: 2011
Materias:
Acceso en línea:http://cds.cern.ch/record/1404999
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author Atieh, S
Aicheler, M
Arnau-Izquierdo, G
Cherif, A
Deparis, L
Glaude, D
Remandet, L
Riddone, G
Scheubel, M
Gudkov, D
Samoshkin, A
Soldko, A
author_facet Atieh, S
Aicheler, M
Arnau-Izquierdo, G
Cherif, A
Deparis, L
Glaude, D
Remandet, L
Riddone, G
Scheubel, M
Gudkov, D
Samoshkin, A
Soldko, A
author_sort Atieh, S
collection CERN
description The Compact Linear Collider (CLIC) is currently under study at CERN as a potential multi-TeV e+e– collider. The manufacturing and assembling tolerances for making the required RF components are essential for CLIC to perform efficiently. Machining techniques are relevant to the construction of ultra-high-precision parts for the Accelerating Structures (AS). Optical-quality turning and ultra-precision milling using diamond tools are the main manufacturing techniques identified to produce ultra-high shape accuracy parts. A shape error of less than 5 μm and roughness of Ra 0.025 are achieved. Scanning Electron Microscopy (SEM) observation as well as sub-micron precision Coordinate Measuring Machines (CMM), roughness measurements and their crucial environment were implemented at CERN for quality assurance and further development. This paper focuses on the enhancements of precision machining and characterizing the fabrication of AS parts.
id cern-1404999
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
record_format invenio
spelling cern-14049992023-07-20T15:00:57Zhttp://cds.cern.ch/record/1404999engAtieh, SAicheler, MArnau-Izquierdo, GCherif, ADeparis, LGlaude, DRemandet, LRiddone, GScheubel, MGudkov, DSamoshkin, ASoldko, AMachining and Characterizing X-Band RF-Structures for CLICAccelerators and Storage RingsThe Compact Linear Collider (CLIC) is currently under study at CERN as a potential multi-TeV e+e– collider. The manufacturing and assembling tolerances for making the required RF components are essential for CLIC to perform efficiently. Machining techniques are relevant to the construction of ultra-high-precision parts for the Accelerating Structures (AS). Optical-quality turning and ultra-precision milling using diamond tools are the main manufacturing techniques identified to produce ultra-high shape accuracy parts. A shape error of less than 5 μm and roughness of Ra 0.025 are achieved. Scanning Electron Microscopy (SEM) observation as well as sub-micron precision Coordinate Measuring Machines (CMM), roughness measurements and their crucial environment were implemented at CERN for quality assurance and further development. This paper focuses on the enhancements of precision machining and characterizing the fabrication of AS parts.CERN-ATS-2011-238CLIC-Note-916oai:cds.cern.ch:14049992011-12-06
spellingShingle Accelerators and Storage Rings
Atieh, S
Aicheler, M
Arnau-Izquierdo, G
Cherif, A
Deparis, L
Glaude, D
Remandet, L
Riddone, G
Scheubel, M
Gudkov, D
Samoshkin, A
Soldko, A
Machining and Characterizing X-Band RF-Structures for CLIC
title Machining and Characterizing X-Band RF-Structures for CLIC
title_full Machining and Characterizing X-Band RF-Structures for CLIC
title_fullStr Machining and Characterizing X-Band RF-Structures for CLIC
title_full_unstemmed Machining and Characterizing X-Band RF-Structures for CLIC
title_short Machining and Characterizing X-Band RF-Structures for CLIC
title_sort machining and characterizing x-band rf-structures for clic
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1404999
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