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Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids

The Future Circular Collider (FCC) study includes the design of the detector magnets for the FCC-ee$^+$ (electron-positron) collider, requiring a 2 T solenoid for particle spectrometry, and for the FCC-hh (proton-proton) collider, with a 4 T detector solenoid. For both solenoids and their cryostats,...

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Autores principales: Ilardi, V, Busch, L N, Dudarev, A, Koettig, T, de Sousa, P Borges, Liberadzka, J, Silva, H, ten Kate, H H J
Lenguaje:eng
Publicado: IOP 2020
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1757-899X/756/1/012005
http://cds.cern.ch/record/2727540
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author Ilardi, V
Busch, L N
Dudarev, A
Koettig, T
de Sousa, P Borges
Liberadzka, J
Silva, H
ten Kate, H H J
author_facet Ilardi, V
Busch, L N
Dudarev, A
Koettig, T
de Sousa, P Borges
Liberadzka, J
Silva, H
ten Kate, H H J
author_sort Ilardi, V
collection CERN
description The Future Circular Collider (FCC) study includes the design of the detector magnets for the FCC-ee$^+$ (electron-positron) collider, requiring a 2 T solenoid for particle spectrometry, and for the FCC-hh (proton-proton) collider, with a 4 T detector solenoid. For both solenoids and their cryostats, CERN is developing an innovative and challenging design in which the solenoids are positioned inside the calorimeters, directly surrounding the inner tracker. For this purpose, the cryostats must be optimized to have maximum radiation transparency. They are structured as a sandwich of thinnest possible metallic shells for achieving vacuum tightness, supported by layers of low density and highly radiation transparent insulation material, still providing sufficient mechanical resistance and low thermal conductivity. In this respect, thermal and mechanical analysis of innovative insulation materials are currently being carried out. The first material of interest, Cryogel® Z, is shaped as a flexible composite blanket, which combines silica aerogel with reinforcing fibers and a density of 160 kg/m$^3$. It allows a 4 m bore, 6 m long FCC-ee$^+$ detector solenoid cryostat with a total thickness of 250 mm. CERN has investigated the compression of Cryogel® Z under 1 bar equivalent mechanical load and its thermal conductivity between 10 K and room temperature, as well as the critical phenomena of thermal shrinkage and outgassing. We present the test results, as a first overview on the material.
id oai-inspirehep.net-1810141
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
publisher IOP
record_format invenio
spelling oai-inspirehep.net-18101412020-08-09T18:08:58Zdoi:10.1088/1757-899X/756/1/012005http://cds.cern.ch/record/2727540engIlardi, VBusch, L NDudarev, AKoettig, Tde Sousa, P BorgesLiberadzka, JSilva, Hten Kate, H H JCompression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoidsDetectors and Experimental TechniquesThe Future Circular Collider (FCC) study includes the design of the detector magnets for the FCC-ee$^+$ (electron-positron) collider, requiring a 2 T solenoid for particle spectrometry, and for the FCC-hh (proton-proton) collider, with a 4 T detector solenoid. For both solenoids and their cryostats, CERN is developing an innovative and challenging design in which the solenoids are positioned inside the calorimeters, directly surrounding the inner tracker. For this purpose, the cryostats must be optimized to have maximum radiation transparency. They are structured as a sandwich of thinnest possible metallic shells for achieving vacuum tightness, supported by layers of low density and highly radiation transparent insulation material, still providing sufficient mechanical resistance and low thermal conductivity. In this respect, thermal and mechanical analysis of innovative insulation materials are currently being carried out. The first material of interest, Cryogel® Z, is shaped as a flexible composite blanket, which combines silica aerogel with reinforcing fibers and a density of 160 kg/m$^3$. It allows a 4 m bore, 6 m long FCC-ee$^+$ detector solenoid cryostat with a total thickness of 250 mm. CERN has investigated the compression of Cryogel® Z under 1 bar equivalent mechanical load and its thermal conductivity between 10 K and room temperature, as well as the critical phenomena of thermal shrinkage and outgassing. We present the test results, as a first overview on the material.IOPoai:inspirehep.net:18101412020
spellingShingle Detectors and Experimental Techniques
Ilardi, V
Busch, L N
Dudarev, A
Koettig, T
de Sousa, P Borges
Liberadzka, J
Silva, H
ten Kate, H H J
Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title_full Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title_fullStr Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title_full_unstemmed Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title_short Compression and thermal conductivity tests of Cryogel® Z for use in the ultra-transparent cryostats of FCC detector solenoids
title_sort compression and thermal conductivity tests of cryogel® z for use in the ultra-transparent cryostats of fcc detector solenoids
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1088/1757-899X/756/1/012005
http://cds.cern.ch/record/2727540
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