Physics Basis for a Conservative Physics and Conservative Technology Tokamak Power Plant: ARIES-ACT2

作者: C. E. Kessel , F. M. Poli

DOI: 10.13182/FST14-793

关键词:

摘要: The conservative physics and technology tokamak power plant ARIES-ACT2 has a major radius of 9.75 m at aspect ratio 4.0, strong shaping with elongation 2.2 triangularity 0.63. no wall {beta}N reaches {approximately} 2.4, limited by n=1 external kink mode, can be extended to 3.2 stabilizing shell behind the ring structure shield. bootstrap current fraction is 77% q95 8.0, requiring about 4.0 MA drive. This supplied 30 MW ICRF/FW 80 negative ion NB. Up 1.0 driven LH wall, 1.5 or more shell. EC was examined most effective for safety factor control over {rho} 0.2-0.6 20 MW. pedestal density 0.65x10{sup 20}/m{sup 3} temperature 9.0 keV. H98 1.25, n/n{sub Gr} = 1.3, net threshold 1.3-1.4 in flattop. Due high toroidal field central cyclotron radiation loss found depending on first reflectivity.

参考文章(65)
XR Wang, MS Tillack, C Koehly, S Malang, HH Toudeshki, F Najmabadi, ARIES Team, None, ARIES-ACT2 DCLL Power Core Design and Engineering Fusion Science and Technology. ,vol. 67, pp. 193- 219 ,(2015) , 10.13182/FST14-798
C. E. Kessel, M. S. Tillack, J. P. Blanchard, The Evaluation of the Heat Loading from Steady, Transient and Off-Normal Conditions in ARIES Power Plants Fusion Science and Technology. ,vol. 64, pp. 440- 448 ,(2013) , 10.13182/FST12-538
M. E. Rensink, T. D. Rognlien, Plasma Heat-Flux Dispersal for ACT1 Divertor Configurations Fusion Science and Technology. ,vol. 67, pp. 125- 141 ,(2015) , 10.13182/FST14-800
C. E. Kessel, F. M. Poli, K. Ghantous, N. N. Gorelenkov, M. E. Rensink, T. D. Rognlien, P. B. Snyder, H. St. John, A. D. Turnbull, Physics basis for an advanced physics and advanced technology tokamak power plant configuration: ARIES-ACT1 Fusion Science and Technology. ,vol. 67, pp. 75- 106 ,(2015) , 10.13182/FST14-795
James P. Blanchard, Carl Martin, Thermomechanical Analysis for an All-Tungsten ARIES Divertor Fusion Science and Technology. ,vol. 67, pp. 158- 166 ,(2015) , 10.13182/FST14-796
MS Tillack, XR Wang, D Navaei, HH Toudeshki, AF Rowcliffe, F Najmabadi, ARIES Team, None, Design and Analysis of the ARIES-ACT1 Fusion Power Core Fusion Science and Technology. ,vol. 67, pp. 49- 74 ,(2015) , 10.13182/FST14-790
W Fundamenski, R.A Pitts, G.F Matthews, V Riccardo, S Sipilä, JET EFDA Contributors, ELM-averaged power exhaust on JET Nuclear Fusion. ,vol. 45, pp. 950- 975 ,(2005) , 10.1088/0029-5515/45/8/024
D.G. Whyte, R. Granetz, M. Bakhtiari, V. Izzo, T. Jernigan, J. Terry, M. Reinke, B. Lipschultz, Disruption mitigation on Alcator C-Mod using high-pressure gas injection: Experiments and modeling toward ITER Journal of Nuclear Materials. ,vol. 363, pp. 1160- 1167 ,(2007) , 10.1016/J.JNUCMAT.2007.01.149
AM Garofalo, GL Jackson, RJ La Haye, M Okabayashi, H Reimerdes, EJ Strait, JR Ferron, RJ Groebner, Yongkyoon In, MJ Lanctot, G Matsunaga, GA Navratil, WM Solomon, H Takahashi, M Takechi, AD Turnbull, DIII-D Team, Stability and control of resistive wall modes in high beta, low rotation DIII-D plasmas Nuclear Fusion. ,vol. 47, pp. 1121- 1130 ,(2007) , 10.1088/0029-5515/47/9/008
M. Beurskens, M. de Baar, J. Lönnroth, P. J. Lomas, G. Matthews, W. Fundamenski, V. Parail, M. Becoulet, P. Monier-Garbet, E. de la Luna, B. Gonçalves, C. Silva, Y. Corre, Contributors to the EFDA-JET Workpr, A. Loarte, G. Saibene, R. Sartori, T. Eich, A. Kallenbach, W. Suttrop, M. Kempenaars, Characterization of pedestal parameters and edge localized mode energy losses in the Joint European Torus and predictions for the International Thermonuclear Experimental Reactor Physics of Plasmas. ,vol. 11, pp. 2668- 2678 ,(2004) , 10.1063/1.1707025