Title :
Influence of plasma operation on the PF circulator of KSTAR HRS System during 2010 campaign
Author :
Lee, H.J. ; Park, D.S. ; Park, Y.M. ; Moon, K.M. ; Joo, J.J. ; Yang, H.L. ; Kwon, M.
Author_Institution :
Tokamak Eng. Div., KSTAR Res. Center, Daejeon, South Korea
Abstract :
The Helium Refrigerator System (HRS) of the Korea Superconducting Tokamak Advanced Research (KSTAR) which was designed to provide an energetic equivalent cooling power of 9 kW at 4.5 K, has been operated successfully during last three years since 2008. For the operation of the KSTAR, the all of the cold components, such as the superconducting (SC) magnets, magnet structure, thermal shields (TS), SC buslines (BL), and current leads (CL) were cooled down to the aimed cryogenic temperature by generated helium in the HRS. The supercritical helium (4.5 K and 5.5 bar) of 300 g/s was delivered for cooling of the SC magnet (PF magnet: 14, TF magnet: 16) and magnet structure and was circulated by the Poloidal Field (PF) and the Toroidal Field (TF) circulators. Thermal loads due to magnet operation are removed at the thermal damper (TD) installed in the distribution box of the HRS. And the pressure change in the magnet will directly affect to the circulators. In particular, pressure drop of the PF circulator drastically changed due to the PF magnet operation depending on the plasma generation scenario. In the 2010 campaign, the operating range of the PF magnet expanded from ± 4 kA to ± 10 kA and the plasma scenario was improved. Accordingly, the mass flow rate of the PF circuit was increased from 350 g/s to 369 g/s in order to achieve cryogenic stability. But the operating range of PF circulator exceeded the allowable range during shot #2526 shot and shot #3878. Nevertheless, the circulator successfully operated without any significant fault. Operating plan of the PF magnet that will be further expanded in the operating range may cause damages to the circulator continuously. Consequently, the influence of PF operating scenarios on the PF circulator was analyzed to investigate safety margin of the HRS.
Keywords :
Tokamak devices; cryogenics; fusion reactor materials; fusion reactor operation; fusion reactor safety; plasma toroidal confinement; superconducting magnets; KSTAR HRS system; Korea superconducting tokamak advanced research; PF circuit; PF circulator; PF magnet operation; SC buslines; cold components; cryogenic stability; cryogenic temperature; current leads; distribution box; helium refrigerator system; magnet structure; plasma generation scenario; plasma operation; plasma scenario; poloidal field circulator; power 9 kW; superconducting magnets; supercritical helium; temperature 4.5 K; thermal damper; thermal loads; thermal shields; toroidal field circulator; Circulators; Estimation; Plasmas; Stability criteria; Superconducting magnets; Toroidal magnetic fields; formatting; insert (KSTAR, Tokamak, Helium Refrigeration System(HRS), Dynamic thermal load, Helium circulator, plasma operation); style; styling;
Conference_Titel :
Fusion Engineering (SOFE), 2011 IEEE/NPSS 24th Symposium on
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4577-0669-1
Electronic_ISBN :
1078-8891
DOI :
10.1109/SOFE.2011.6052286