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Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats

The recent commissioning and operation of the LHC String 2 have given a first experimental validation of the global thermal performance of the LHC lattice cryostat at nominal cryogenic conditions. The cryostat designed to minimize the heat inleak from ambient temperature, houses under vacuum and the...

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Autores principales: Bourcey, N, Capatina, O, Parma, V, Poncet, A, Rohmig, P, Serio, L, Skoczen, Blazej, Tock, J P, Williams, L R
Lenguaje:eng
Publicado: 2004
Materias:
Acceso en línea:https://dx.doi.org/10.1063/1.1774719
http://cds.cern.ch/record/709125
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author Bourcey, N
Capatina, O
Parma, V
Poncet, A
Rohmig, P
Serio, L
Skoczen, Blazej
Tock, J P
Williams, L R
author_facet Bourcey, N
Capatina, O
Parma, V
Poncet, A
Rohmig, P
Serio, L
Skoczen, Blazej
Tock, J P
Williams, L R
author_sort Bourcey, N
collection CERN
description The recent commissioning and operation of the LHC String 2 have given a first experimental validation of the global thermal performance of the LHC lattice cryostat at nominal cryogenic conditions. The cryostat designed to minimize the heat inleak from ambient temperature, houses under vacuum and thermally protects the cold mass, which contains the LHC twin-aperture superconducting magnets operating at 1.9 K in superfluid helium. Mechanical components linking the cold mass to the vacuum vessel, such as support posts and insulation vacuum barriers are designed with efficient thermalisations for heat interception to minimise heat conduction. Heat inleak by radiation is reduced by employing multilayer insulation (MLI) wrapped around the cold mass and around an aluminium thermal shield cooled to about 60 K. Measurements of the total helium vaporization rate in String 2 gives, after substraction of supplementary heat loads and end effects, an estimate of the total thermal load to a standard LHC cell (107 m) including two Short Straight Sections and six dipole cryomagnets. Temperature sensors installed at critical locations provide a temperature mapping which allows validation of the calculated and estimated thermal performance of the cryostat components, including efficiency of the heat interceptions.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2004
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spelling cern-7091252023-05-31T13:22:47Zdoi:10.1063/1.1774719http://cds.cern.ch/record/709125engBourcey, NCapatina, OParma, VPoncet, ARohmig, PSerio, LSkoczen, BlazejTock, J PWilliams, L RFinal Design and Experimental Validation of the Thermal Performance of the LHC Lattice CryostatsAccelerators and Storage RingsThe recent commissioning and operation of the LHC String 2 have given a first experimental validation of the global thermal performance of the LHC lattice cryostat at nominal cryogenic conditions. The cryostat designed to minimize the heat inleak from ambient temperature, houses under vacuum and thermally protects the cold mass, which contains the LHC twin-aperture superconducting magnets operating at 1.9 K in superfluid helium. Mechanical components linking the cold mass to the vacuum vessel, such as support posts and insulation vacuum barriers are designed with efficient thermalisations for heat interception to minimise heat conduction. Heat inleak by radiation is reduced by employing multilayer insulation (MLI) wrapped around the cold mass and around an aluminium thermal shield cooled to about 60 K. Measurements of the total helium vaporization rate in String 2 gives, after substraction of supplementary heat loads and end effects, an estimate of the total thermal load to a standard LHC cell (107 m) including two Short Straight Sections and six dipole cryomagnets. Temperature sensors installed at critical locations provide a temperature mapping which allows validation of the calculated and estimated thermal performance of the cryostat components, including efficiency of the heat interceptions.LHC-Project-Report-689CERN-LHC-Project-Report-689oai:cds.cern.ch:7091252004-01-29
spellingShingle Accelerators and Storage Rings
Bourcey, N
Capatina, O
Parma, V
Poncet, A
Rohmig, P
Serio, L
Skoczen, Blazej
Tock, J P
Williams, L R
Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title_full Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title_fullStr Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title_full_unstemmed Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title_short Final Design and Experimental Validation of the Thermal Performance of the LHC Lattice Cryostats
title_sort final design and experimental validation of the thermal performance of the lhc lattice cryostats
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1063/1.1774719
http://cds.cern.ch/record/709125
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