DocumentCode
1434192
Title
Design of a Superconducting Magnet System for the AEGIS Experiment at CERN
Author
Dudarev, Alexey ; Doser, Michael ; Perini, Diego ; Ten Kate, Herman
Author_Institution
CERN, Eur. Center for Nucl. Res., Geneva, Switzerland
Volume
21
Issue
3
fYear
2011
fDate
6/1/2011 12:00:00 AM
Firstpage
1721
Lastpage
1724
Abstract
The new AEGIS (Antimatter Experiment: Gravity, Interferometry, Spectroscopy) Experiment will be installed in the Antiproton Decelerator hall at CERN. The main goal is to measure the Earth´s gravitational acceleration of antihydrogen atoms. The experiment consists of two high-homogeneity solenoids placed on the same axis. The 5 T magnet is part of a cylindrical Penning trap to catch and to accumulate antiprotons delivered by the decelerator. The antihydrogen is then produced in the 1 T region where sub-kelvin antiproton temperatures provided by the dilution refrigerator are required to form a slowly-moving beam of antihydrogen. The helium bath cooled superconducting magnets; the different traps and the dilution refrigerator are integrated in a common cryostat with an internal vacuum barrier between the insulating cryogenic vacuum and the very high beam vacuum. In addition, the magnet system has to guarantee a smooth transition between the 5 T and the 1 T magnetic field areas required for a loss-free transfer of antiprotons and positrons from the trapping region to the antihydrogen production area. In this paper the design of this AEGIS magnet system is presented and discussed.
Keywords
accelerator magnets; cryostats; gravitation; hadronic atoms; magnetic cooling; magnetic field effects; magnetic traps; superconducting magnets; AEGIS experiment; AEGIS magnet system; CERN; Earth gravitational acceleration; antihydrogen atom; antihydrogen production area; antimatter experiment-gravity-interferometry-spectroscopy; antiproton decelerator hall; beam vacuum; cryostat; cylindrical Penning trap; dilution refrigerator; helium bath cooled superconducting magnet; high-homogeneity solenoid; insulating cryogenic vacuum; internal vacuum barrier; loss-free transfer; magnetic field; slowly-moving beam; subkelvin antiproton temperature; superconducting magnet system; trapping region; Coils; Helium; Magnetic separation; Power supplies; Solenoids; Superconducting magnets; Windings; Anti-hydrogen; cryostat; gravitational acceleration; superconducting magnet;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2010.2100345
Filename
5699938
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