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Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests

The LHC will be composed of 1232 horizontally curved, 15 meter long, superconducting dipole magnets cooled at 1.9 K. They are supported within their vacuum vessel by three Glass Fiber Reinforced Epoxy (GFRE) support posts. Each cryodipole is individually cold tested at CERN before its installation a...

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Autores principales: Cano, E D Fernandez, Buzio, M, García-Pérez, J, Jeanneret, Jean Bernard, Poncet, A, Seyvet, F, Tovar-Gonzalez, A, Wildner, E
Lenguaje:eng
Publicado: 2006
Materias:
Acceso en línea:https://dx.doi.org/10.1109/TASC.2006.870492
http://cds.cern.ch/record/970358
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author Cano, E D Fernandez
Buzio, M
García-Pérez, J
Jeanneret, Jean Bernard
Poncet, A
Seyvet, F
Tovar-Gonzalez, A
Wildner, E
author_facet Cano, E D Fernandez
Buzio, M
García-Pérez, J
Jeanneret, Jean Bernard
Poncet, A
Seyvet, F
Tovar-Gonzalez, A
Wildner, E
author_sort Cano, E D Fernandez
collection CERN
description The LHC will be composed of 1232 horizontally curved, 15 meter long, superconducting dipole magnets cooled at 1.9 K. They are supported within their vacuum vessel by three Glass Fiber Reinforced Epoxy (GFRE) support posts. Each cryodipole is individually cold tested at CERN before its installation and interconnection in the LHC 27 km circumference tunnel. As the magnet geometry under cryogenic operation is extremely important for the LHC machine aperture, a new method has been developed at CERN in order to monitor the magnet curvature change between warm and cold states. It enabled us to conclude that there is no permanent horizontal curvature change of the LHC dipole magnet between warm and cold states, although a systematic horizontal transient deformation during cool-down was detected. This deformation generates loads in the dipole supporting system; further investigation permitted us to infer this behavior to the asymmetric thermal contraction of the rigid magnet thermal shield during cool-down. Controlling the helium flow rate in the thermal shield of the cryomagnet enabled us to reduce the maximal deformation by a factor of approximately two, thus increasing significantly the mechanical safety margin of the supporting system during the CERN cold tests.
id cern-970358
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2006
record_format invenio
spelling cern-9703582023-05-31T13:24:07Zdoi:10.1109/TASC.2006.870492http://cds.cern.ch/record/970358engCano, E D FernandezBuzio, MGarcía-Pérez, JJeanneret, Jean BernardPoncet, ASeyvet, FTovar-Gonzalez, AWildner, EStability of the Horizontal Curvature of the LHC Cryodipoles During Cold TestsAccelerators and Storage RingsThe LHC will be composed of 1232 horizontally curved, 15 meter long, superconducting dipole magnets cooled at 1.9 K. They are supported within their vacuum vessel by three Glass Fiber Reinforced Epoxy (GFRE) support posts. Each cryodipole is individually cold tested at CERN before its installation and interconnection in the LHC 27 km circumference tunnel. As the magnet geometry under cryogenic operation is extremely important for the LHC machine aperture, a new method has been developed at CERN in order to monitor the magnet curvature change between warm and cold states. It enabled us to conclude that there is no permanent horizontal curvature change of the LHC dipole magnet between warm and cold states, although a systematic horizontal transient deformation during cool-down was detected. This deformation generates loads in the dipole supporting system; further investigation permitted us to infer this behavior to the asymmetric thermal contraction of the rigid magnet thermal shield during cool-down. Controlling the helium flow rate in the thermal shield of the cryomagnet enabled us to reduce the maximal deformation by a factor of approximately two, thus increasing significantly the mechanical safety margin of the supporting system during the CERN cold tests.LHC-PROJECT-Report-875CERN-LHC-Project-Report-875oai:cds.cern.ch:9703582006-05-19
spellingShingle Accelerators and Storage Rings
Cano, E D Fernandez
Buzio, M
García-Pérez, J
Jeanneret, Jean Bernard
Poncet, A
Seyvet, F
Tovar-Gonzalez, A
Wildner, E
Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title_full Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title_fullStr Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title_full_unstemmed Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title_short Stability of the Horizontal Curvature of the LHC Cryodipoles During Cold Tests
title_sort stability of the horizontal curvature of the lhc cryodipoles during cold tests
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1109/TASC.2006.870492
http://cds.cern.ch/record/970358
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