Wu Wei, Ma Lizhen, He Yuan, et al. Three dimensional numeric quench simulation of Super-FRS dipole test coil for FAIR project[J]. High Power Laser and Particle Beams, 2013, 25: 2075-2079. doi: 10.3788/HPLPB20132508.2075
Citation:
Wu Wei, Ma Lizhen, He Yuan, et al. Three dimensional numeric quench simulation of Super-FRS dipole test coil for FAIR project[J]. High Power Laser and Particle Beams, 2013, 25: 2075-2079. doi: 10.3788/HPLPB20132508.2075
Wu Wei, Ma Lizhen, He Yuan, et al. Three dimensional numeric quench simulation of Super-FRS dipole test coil for FAIR project[J]. High Power Laser and Particle Beams, 2013, 25: 2075-2079. doi: 10.3788/HPLPB20132508.2075
Citation:
Wu Wei, Ma Lizhen, He Yuan, et al. Three dimensional numeric quench simulation of Super-FRS dipole test coil for FAIR project[J]. High Power Laser and Particle Beams, 2013, 25: 2075-2079. doi: 10.3788/HPLPB20132508.2075
The prototype of superferric dipoles for Super-FRS of Facility for Antiprotons and Ion Research (FAIR) project was designed, fabricated, and tested in China. To investigate the performance of the superconducting coil, a so-called test coil was fabricated and tested in advance. A 3D model based on ANSYS and OPERA 3D was developed in parallel, not only to check if the design matches the numerical simulation, but also to study more details of quench phenomena. The model simplifies the epoxy impregnated coil into an anisotropic continuum medium. The simulation combines ANSYS solver routines for nonlinear transient thermal analysis, the OPERA 3D for magnetic field evaluation and the ANSYS script language for calculations of Joule heat and differential equations of the protection circuits. The time changes of temperature, voltage and current decay, and quench propagation during quench process were analyzed and illustrated. Finally, the test results of the test coil were demonstrated and compared with the results of simulation.