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
fDate :
6/1/2011 12:00:00 AM
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;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2010.2100345