TY - JOUR
T1 - Implications of the TORE-SUPRA WEST-project on radio frequency additional heating systems
AU - Guilhem, Dominique
AU - Argouarch, Arnaud
AU - Bernard, Jean Michel
AU - Bouquey, Francis
AU - Colas, Laurent
AU - Delpech, Lena
AU - Durodie, Frederic
AU - Ekedahl, Annika
AU - Van Helvoirt, Jan
AU - Hillairet, Julien
AU - Joffrin, Emmanuel
AU - Litaudon, Xavier
AU - Magne, Roland
AU - Milanesio, Daniele
AU - Moerel, Jovita Gerardus Maria
AU - Mollard, Patrick
AU - Wittebol, Erik Henribus Maria
AU - Achard, Joelle
AU - Armitano, Arthur
AU - Berger-By, Gilles
AU - Charabot, Nicolas
AU - Goniche, Marc
AU - Jacquot, Jonathan
AU - Lombard, Gilles
AU - Prou, Marc
AU - Traisnel-Corbel, Elodie
AU - Volpe, Robert
AU - Vulliez, Karl
PY - 2014/3
Y1 - 2014/3
N2 - This year, TORE-SUPRA celebrated 25 years of operation. During this time, a number of technologies have been developed. First of all, it was mandatory to develop reliable superconducting magnets at ∼1.8 K, with superfluid helium as an efficient coolant. For the production of steady-state discharge, three types of radio-frequency (RF) additional heating systems have been developed: lower hybrid current drive, ions and electrons cyclotron resonance heating. To cope with long-lasting discharges (up to 380 s ×,2.8 MW) and large RF additional heating power (12.3 MW ×3 s), actively cooled (AC) plasma facing components were deployed in TORE-SUPRA for the first time in a tokamak environment. TORE-SUPRA is now being modified into a D-shaped axisymmetric tokamak with AC main chamber walls and an AC tungsten divertor, the W-for tungsten-Environment in Steady-state tokamak (WEST). This new facility has the objective to offer ITER a test bed for validating the relevant AC metallic technologies in D-shaped H-mode plasmas. In contrast to other metallic devices such as JET and ASDEX upgrade, WEST will rely only on RF additional power systems. A set of plasma scenarios have been identified, ranging from a high total RF power scenario up to 15 MW-30 s, to a high fluence scenario of 1000 s with up to 10 MW of injected RF power. These scenarios are able to reproduce ITER-relevant conditions of steady-state heat loads of 10-20 MWm2, to test tungsten AC divertor technologies with relevant power heat fluxes and particle fluence.
AB - This year, TORE-SUPRA celebrated 25 years of operation. During this time, a number of technologies have been developed. First of all, it was mandatory to develop reliable superconducting magnets at ∼1.8 K, with superfluid helium as an efficient coolant. For the production of steady-state discharge, three types of radio-frequency (RF) additional heating systems have been developed: lower hybrid current drive, ions and electrons cyclotron resonance heating. To cope with long-lasting discharges (up to 380 s ×,2.8 MW) and large RF additional heating power (12.3 MW ×3 s), actively cooled (AC) plasma facing components were deployed in TORE-SUPRA for the first time in a tokamak environment. TORE-SUPRA is now being modified into a D-shaped axisymmetric tokamak with AC main chamber walls and an AC tungsten divertor, the W-for tungsten-Environment in Steady-state tokamak (WEST). This new facility has the objective to offer ITER a test bed for validating the relevant AC metallic technologies in D-shaped H-mode plasmas. In contrast to other metallic devices such as JET and ASDEX upgrade, WEST will rely only on RF additional power systems. A set of plasma scenarios have been identified, ranging from a high total RF power scenario up to 15 MW-30 s, to a high fluence scenario of 1000 s with up to 10 MW of injected RF power. These scenarios are able to reproduce ITER-relevant conditions of steady-state heat loads of 10-20 MWm2, to test tungsten AC divertor technologies with relevant power heat fluxes and particle fluence.
KW - Plasma additional heating systems
KW - TORE-SUPRA
KW - WEST-project
KW - radio frequency (RF)
UR - http://www.scopus.com/inward/record.url?scp=84896489460&partnerID=8YFLogxK
U2 - 10.1109/TPS.2014.2303886
DO - 10.1109/TPS.2014.2303886
M3 - Article
AN - SCOPUS:84896489460
SN - 0093-3813
VL - 42
SP - 879
EP - 884
JO - IEEE Transactions on Plasma Science
JF - IEEE Transactions on Plasma Science
IS - 3
M1 - 6750086
ER -