Title :
Solenoid Magnet System for the Fermilab Mu2e Experiment
Author :
Lamm, M.J. ; Andreev, N. ; Ambrosio, G. ; Brandt, J. ; Coleman, R. ; Evbota, D. ; Kashikhin, V.V. ; Lopes, M. ; Miller, Jason ; Nicol, T. ; Ostojic, R. ; Page, T. ; Peterson, T. ; Popp, J. ; Pronskikh, V. ; Tang, Zhen ; Tartaglia, M. ; Wake, M. ; Wands, R
Author_Institution :
Fermilab, Batavia, IL, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
The Fermilab Mu2e experiment seeks to measure the rare process of direct muon to electron conversion in the field of a nucleus. Key to the design of the experiment is a system of three superconducting solenoids; a muon production solenoid (PS) which is a 1.8 m aperture axially graded solenoid with a peak field of 5 T used to focus secondary pions and muons from a production target located in the solenoid aperture; an “S shaped” transport solenoid (TS) which selects and transports the subsequent muons towards a stopping target; a detector solenoid (DS) which is an axially graded solenoid at the upstream end to focus transported muons to a stopping target, and a spectrometer solenoid at the downstream end to accurately measure the momentum of the outgoing conversion electrons. The magnetic field requirements, the significant magnetic coupling between the solenoids, the curved muon transport geometry and the large beam induced energy deposition into the superconducting coils pose significant challenges to the magnetic, mechanical, and thermal design of this system. In this paper a conceptual design for the magnetic system which meets the Mu2e experiment requirements is presented.
Keywords :
magnetic fields; muon production; superconducting coils; superconducting magnets; Fermilab Mu2e experiment; S shaped transport solenoid; axially graded solenoid; curved muon transport geometry; detector solenoid; direct muon; electron conversion; large beam induced energy deposition; magnetic coupling; magnetic design; magnetic field; mechanical design; muon production solenoid; secondary pions; solenoid magnet system; spectrometer solenoid; superconducting coils; superconducting solenoids; thermal design; Aluminum; Coils; Conductors; Mesons; Production; Solenoids; Superconducting magnets; Aluminum stabilized conductor; particle detector; superconducting solenoids;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2011.2179835