Title :
Test Coil for the Development of a Compact 3 T
Magnet
Author :
Mine, Susumu ; Song, H. ; Xu, Mengdi ; Marte, J. ; Buresh, S. ; Stautner, W. ; Immer, Christopher ; Laskaris, E.T. ; Amm, Kathleen
Author_Institution :
GE Global Res. Center, Niskayuna, NY, USA
fDate :
6/1/2012 12:00:00 AM
Abstract :
An test coil was manufactured and tested as the first step in the development of a 3 T MgB2 magnet system. Due to the fact that MgB2 has a higher critical temperature, replacing conventional NbTi superconductor with MgB2, higher temperature operation will be possible. It will make the cryogenic design much simpler and less expensive. Furthermore, operating the magnet at higher temperature results in larger heat capacity of the materials and surrounding structures. Higher heat capacity, therefore, results in increased thermal stability of the magnet against quench initiation. The 3 T magnet design consists of several coils. One of the center coils was manufactured for testing the performance at higher temperatures. The test coil was conduction cooled and the quench performance of the coil was good, which means there were no critical issues during the coil manufacturing process. However, AC loss heating, as well as a small resistance of the coil was found, both of which might result from wire design, manufacture, and quality.
Keywords :
boron alloys; cryogenics; high-temperature superconductors; magnesium alloys; quenching (thermal); specific heat; superconducting coils; superconducting magnets; superconducting transition temperature; thermal stability; AC loss heating; MgB2; coil manufacturing process; coil resistance; compact magnet; cooled performance; cryogenic design; heat capacity; higher critical temperature; magnet design; magnetic flux density 3 T; quench initiation; quench performance; test coil; thermal stability; Coils; Copper; Heating; Integrated circuits; Magnetomechanical effects; Superconducting magnets; Wires; ${rm MgB}_{2}$; Conduction cool; critical current; critical temperature; cryocooler; n-value; superconducting magnet;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2011.2175682