DocumentCode :
1312873
Title :
Final design of the CMS solenoid cold mass
Author :
Kircher, F. ; Bredy, Philippe ; Calvo, A. ; Cure, B. ; Campi, D. ; Desirelli, A. ; Fabbricatore, Pasquale ; Farinon, S. ; Herve, Alexandre ; Horvath, I. ; Klioukhine, V. ; Levesy, B. ; Losasso, M. ; Lottin, J.P. ; Musenich, R. ; Pabot, Y. ; Payn, Alain ;
Author_Institution :
CEA, Centre d´Etudes Nucleaires de Saclay, Gif-sur-Yvette, France
Volume :
10
Issue :
1
fYear :
2000
fDate :
3/1/2000 12:00:00 AM
Firstpage :
407
Lastpage :
410
Abstract :
The 4 T, 12.5 m long, 6 m bore diameter superconducting solenoid for the CMS (Compact Muon Solenoid) experiment at LHC will be the largest and the most powerful superconducting solenoid ever built. Part of the CMS design is based on that of previous large superconducting solenoids-the use of a high purity aluminium stabilized conductor, a compact impregnated winding with indirect cooling and quench back protection process. However, the dimensions and the performances of this solenoid have imposed solutions which are more than extrapolations of the previous ones : the use of a mechanically reinforced conductor and a five module winding, each module being made of four layers, internally wound. This design, which is now frozen, relies on numerous magnetic, mechanical and thermal calculations, on various experimental tests (characterization of structural and insulating materials, electrical joints...) and specific mock-ups. Two pre-industrialization programs, concerning the conductor and the winding process have also been carried out with industrial partners to support the foreseen solutions. Both the final design and the experimental results obtained to validate this design are presented in this paper.
Keywords :
aluminium; particle calorimetry; particle spectrometers; solid scintillation detectors; superconducting magnets; 4 T; Al; CMS solenoid cold mass; Compact Muon Solenoid; LHC; compact impregnated winding; electrical joints; five module winding; high purity aluminium stabilized conductor; indirect cooling; insulating materials; mechanically reinforced conductor; pre-industrialization programs; quench back protection process; superconducting solenoid; Aluminum; Boring; Collision mitigation; Conducting materials; Conductors; Cooling; Large Hadron Collider; Magnetic materials; Mesons; Solenoids;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/77.828259
Filename :
828259
Link To Document :
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