Title :
Design of a Large Single-Aperture Dipole Magnet for HL-LHC Upgrade
Author :
Qingjin Xu ; Nakamoto, Takamichi ; Iio, Masami ; Ogitsu, T. ; Sasaki, Kazuhiko ; Yamamoto, Akiyasu ; Todesco, E.
Author_Institution :
High Energy Accel. Res. Organ. (KEK), Tsukuba, Japan
Abstract :
An upgrade of the low-beta insertion system for the ATLAS and Compact Muon Solenoid experiments is proposed in the high luminosity Large Hadron Collider upgrade project. It includes final beam focusing quadrupoles, beam separation and recombination dipoles, and larger aperture matching section quadrupoles. KEK is in charge of the conceptual design of the large aperture separation dipole D1. The latest design parameters are a main field of ~ 5 T at 1.9 K with Nb-Ti superconducting technology, a coil aperture of 160 mm, and a cos-theta one-layer coil with Large Hadron Collider dipole cable. Because the new D1 is expected to be operated in a very high radiation environment, radiation resistance and a cooling scheme are being carefully considered. The collaring-yoke structure is adopted to provide the mechanical support for the single-layer Nb-Ti coil. We summarize the design study of this magnet, including i) the very large iron saturation effect on field quality due to the large aperture and limited size of the iron yoke, ii) the stray field at the outer surface of the iron cryostat, and iii) the stress management from room temperature assembly to final operation.
Keywords :
accelerator magnets; particle beam focusing; storage rings; superconducting magnets; synchrotrons; transition radiation detectors; ATLAS experiment; Compact Muon Solenoid experiment; HL-LHC Upgrade; Large Hadron Collider dipole cable; beam recombination dipoles; beam separation; coil aperture; collaring-yoke structure; cos-theta one-layer coil; final beam focusing quadrupoles; iron cryostat outer surface; large aperture separation dipole; large single-aperture dipole magnet; larger aperture matching section quadrupoles; low-beta insertion system; niobium-titanium superconducting technology; room temperature assembly; stress management; superconducting accelerator magnets; Apertures; Coils; Iron; Large Hadron Collider; Saturation magnetization; Stress; Superconducting magnets; Collaring-yoke structure; cos-theta type coil; large- aperture; superconducting accelerator magnets;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2240034