SOLPS-ITER modeling of EU-DEMO Ar-seeded cases with drifts and kinetic neutrals

被引:4
作者
Korzueva, V [1 ]
Kaveeva, E. [1 ]
Vekshina, E. [1 ]
Rozhansky, V [1 ]
Senichenkov, I [1 ]
Shirobokov, A. [1 ]
Coster, D. [2 ]
机构
[1] Peter Great St Petersburg Polytech Univ, Polytech Skaya 29, St Petersburg 195251, Russia
[2] Max Planck Inst Plasma Phys, D-85748 Garching, Germany
关键词
SOLPS-ITER modeling; drifts; kinetic neutrals; radiating impurity; EU-DEMO;
D O I
10.1088/1361-6587/acdcb8
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
SOLPS-ITER modeling of EU-DEMO tokamak burning plasma with Ar seeding was performed. The modeling includes drifts, kinetic neutrals and current description switched on. The simulation results are compared with those without drifts. The power entering the edge plasma domain is 200 MW. The deuterium puff is 1.5 x 10(23) at s(-1) for all cases, which corresponds to neutral deuterium pressure of 10 Pa in the private flux region. The Ar seeding rates are 8.0x10(19) at s(-1) and 1.5x10(20) at s(-1), which correspond to the Ar concentration on the separatrix in the range of 0.5%-2%. It is demonstrated that with such a combination of parameters, it is possible to achieve power loads lower than 5 MW m(-2) on both divertor targets. The temperature above 5 eV in the far scrape-off layer (SOL) of the outer target remains an issue. Together with drift and no drift cases, the impurity accumulation mechanism in the high-field-side SOL is discussed.
引用
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页数:8
相关论文
共 20 条
[1]   Predictions of radiation pattern and in-out asymmetries in the DEMO scrape-off layer using fluid neutrals [J].
Aho-Mantila, L. ;
Subba, F. ;
Bernert, M. ;
Coster, D. P. ;
Wiesen, S. ;
Wischmeier, M. ;
Bonnin, X. ;
Brezinsek, S. ;
David, P. ;
Militello, F. .
NUCLEAR FUSION, 2022, 62 (05)
[2]   Power exhaust concepts and divertor designs for Japanese and European DEMO fusion reactors [J].
Asakura, N. ;
Hoshino, K. ;
Kakudate, S. ;
Subba, F. ;
Vorpahl, C. ;
Homma, Y. ;
Utoh, H. ;
Someya, Y. ;
Sakamoto, Y. ;
Hiwatari, R. ;
Suzuki, S. ;
You, J-H ;
Siccinio, M. ;
Federici, G. .
NUCLEAR FUSION, 2021, 61 (12)
[4]   The role of the density profile in the ASDEX-Upgrade pedestal structure [J].
Dunne, M. G. ;
Potzel, S. ;
Reimold, F. ;
Wischmeier, M. ;
Wolfrum, E. ;
Frassinetti, L. ;
Beurskens, M. ;
Bilkova, P. ;
Cavedon, M. ;
Fischer, R. ;
Kurzan, B. ;
Laggner, F. M. ;
McDermott, R. M. ;
Tardini, G. ;
Trier, E. ;
Viezzer, E. ;
Willensdorfer, M. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2017, 59 (01)
[5]  
Eckstein W., 1993, SPUTTERING DATA
[6]   Correlation of the tokamak H-mode density limit with ballooning stability at the separatrix [J].
Eich, T. ;
Goldston, R. J. ;
Kallenbach, A. ;
Sieglin, B. ;
Sun, H. J. ;
Abduallev, S. ;
Abhangi, M. ;
Abreu, P. ;
Afzal, M. ;
Aggarwal, K. M. ;
Ahlgren, T. ;
Ahn, J. H. ;
Aho-Mantila, L. ;
Aiba, N. ;
Airila, M. ;
Albanese, R. ;
Aldred, V. ;
Alegre, D. ;
Alessi, E. ;
Aleynikov, P. ;
Alfier, A. ;
Alkseev, A. ;
Allinson, M. ;
Alper, B. ;
Alves, E. ;
Ambrosino, G. ;
Ambrosino, R. ;
Amicucci, L. ;
Amosov, V. ;
Sunden, E. Andersson ;
Angelone, M. ;
Anghel, M. ;
Angioni, C. ;
Appel, L. ;
Appelbee, C. ;
Arena, P. ;
Ariola, M. ;
Arnichand, H. ;
Arshad, S. ;
Ash, A. ;
Ashikawa, N. ;
Aslanyan, V. ;
Asunta, O. ;
Auriemma, F. ;
Austin, Y. ;
Avotina, L. ;
Axton, M. D. ;
Ayres, C. ;
Bacharis, M. ;
Baciero, A. .
NUCLEAR FUSION, 2018, 58 (03)
[7]   Overview of the DEMO staged design approach in Europe [J].
Federici, G. ;
Bachmann, C. ;
Barucca, L. ;
Baylard, C. ;
Biel, W. ;
Boccaccini, L., V ;
Bustreo, C. ;
Ciattaglia, S. ;
Cismondi, F. ;
Corator, V ;
Day, C. ;
Diegele, E. ;
Franke, T. ;
Gaio, E. ;
Gliss, C. ;
Haertl, T. ;
Ibarra, A. ;
Holden, J. ;
Keech, G. ;
Kembleton, R. ;
Loving, A. ;
Maviglial, F. ;
Morris, J. ;
Meszaros, B. ;
Moscato, I ;
Pintsuk, G. ;
Sicciniol, M. ;
Taylor, N. ;
Tran, M. Q. ;
Vorpahl, C. ;
Walden, H. ;
You, J. H. .
NUCLEAR FUSION, 2019, 59 (06)
[8]   Impurity seeding for tokamak power exhaust: from present devices via ITER to DEMO [J].
Kallenbach, A. ;
Bernert, M. ;
Dux, R. ;
Casali, L. ;
Eich, T. ;
Giannone, L. ;
Herrmann, A. ;
McDermott, R. ;
Mlynek, A. ;
Mueller, H. W. ;
Reimold, F. ;
Schweinzer, J. ;
Sertoli, M. ;
Tardini, G. ;
Treutterer, W. ;
Viezzer, E. ;
Wenninger, R. ;
Wischmeier, M. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2013, 55 (12)
[9]   SOLPS-ITER modeling of deuterium throughput impact on the ITER SOL plasma [J].
Kaveeva, E. ;
Makarov, S. ;
Senichenkov, I. ;
Rozhansky, V. ;
Veselova, I. ;
Bonnin, X. ;
Pitts, R. A. .
NUCLEAR MATERIALS AND ENERGY, 2023, 35
[10]   SOLPS-ITER modelling of ITER edge plasma with drifts and currents [J].
Kaveeva, E. ;
Rozhansky, V. ;
Senichenkov, I. ;
Sytova, E. ;
Veselova, I. ;
Voskoboynikov, S. ;
Bonnin, X. ;
Pitts, R. A. ;
Kukushkin, A. S. ;
Wiesen, S. ;
Coster, D. .
NUCLEAR FUSION, 2020, 60 (04)