DocumentCode
1429671
Title
Heat Transfer in an Enhanced Cable Insulation Scheme for the Superconducting Magnets of the LHC Luminosity Upgrade
Author
Granieri, Pier Paolo ; Fessia, Paolo ; Richter, David ; Tommasini, Davide
Author_Institution
Technol. Dept., CERN, Geneva, Switzerland
Volume
20
Issue
3
fYear
2010
fDate
6/1/2010 12:00:00 AM
Firstpage
168
Lastpage
171
Abstract
The next generation of superconducting magnets for the interaction regions of particle colliders, as well as for fast cycled accelerators, will be confronted with large heat loads. In order to improve the evacuation of heat from the Nb-Ti coil towards He-II bath, a porous (enhanced) all-polyimide cable insulation scheme was proposed recently. The first results were promising, featuring a larger permeability to helium with respect to existing schemes under low compressive stress. In this paper we present an extended experimental study of heat transfer through the Enhanced Insulation into He-II bath, and comparison to the standard LHC insulation, at different levels of applied pressure. The thermal coupling between adjacent cables was investigated, as well as the impact of a localized heat deposition versus a distributed one. The results of this study show that, up to high pressure levels, the enhanced insulation scheme can provide a major improvement of heat transfer compared to the standard scheme used in the main LHC magnets.
Keywords
accelerator magnets; cable insulation; cooling; superconducting cables; superconducting magnets; synchrotrons; He-II bath; LHC luminosity upgrade; NbTi coil; all-polyimide cable insulation scheme; applied pressure; enhanced cable insulation scheme; fast cycled accelerators; heat evacuation; heat transfer; localized heat deposition; particle colliders; superconducting magnets; thermal coupling; Accelerator superconducting magnets; LHC upgrade phase I; enhanced heat transfer; porous cable insulation;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2010.2040377
Filename
5422782
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