Predictive nonlinear MHD simulations of quiescent H-mode plasma in the HL-3 tokamak

被引:0
作者
Liang, Z. [1 ,2 ]
Hoelzl, M. [2 ]
Cathey, A. [2 ]
Hu, D. [3 ]
Dai, S. Y. [1 ]
Liu, Y. L. [1 ]
Wang, D. Z. [1 ]
JOREK Team
机构
[1] Dalian Univ Technol, Sch Phys, Key Lab Mat Modificat Laser Ion & Electron Beams, Minist Educ, Dalian 116024, Peoples R China
[2] Max Planck Inst Plasma Phys, Boltzmannstr 2, D-85748 Garching, Germany
[3] Beihang Univ, 37 Xueyuan Rd, Beijing 100191, Peoples R China
基金
中国国家自然科学基金;
关键词
ASDEX UPGRADE; CONFINEMENT; PEDESTAL; STABILITY; REGIME;
D O I
10.1063/5.0238464
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
In this article, we investigate the edge localized mode (ELM)-free quiescent H (QH)-mode regime in the HL-3 tokamak via nonlinear MHD simulations. HL-3 (previously known as HL-2M) aims at high beta plasmas and recently achieved its first H-mode operation. Large ELMs in H-mode discharges challenge the tolerance of plasma facing components in reactor-relevant tokamaks and small/no-ELM regimes become attractive options for existing and future fusion devices. A naturally ELM-free regime, QH-mode, is explored in this work with nonlinear extended MHD modeling for the HL-3 device. The simulation is conducted based on a realistic lower single null divertor configuration, and successfully produces a QH-mode plasma. Toroidal modes n=0, & mldr; , 12 are simulated and the QH-mode plasma is dominated by a saturated n = 2 kink-peeling mode. After entering QH-mode, the plasma thermal energy becomes nearly stationary and the plasma pedestal is kept at a stable level. The saturated peeling instability produces an ergodized edge magnetic field region and some ExB convective cells, which enhance radial transport. The edge harmonic oscillation (EHO) as a characteristic feature of QH-mode plasmas is detected in the pedestal with a fundamental frequency (for the n = 1 mode) of 7.5 kHz. The EHO structures on the high-field side (HFS) and low-field side (LFS) are observed to be asymmetric. The EHO is dominated by the n = 2 mode with a frequency of 15 kHz on the HFS, while the n = 3 mode becomes dominant at the vicinity of psi(norm)=0.95 on the LFS. It is also found that density and temperature profiles show different responses to the EHO in the simulation. The dependence on the safety factor for accessing QH-mode is demonstrated with the QH-mode being lost when q95 is reduced from 2.5 to 2.3. The EHO is absent in this scenario and a bursting ELM-like activity is observed instead. (C) 2025 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
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页数:15
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共 57 条
[1]   Non-linear MHD modelling of edge localized modes dynamics in KSTAR [J].
Becoulet, M. ;
Kim, M. ;
Yun, G. ;
Pamela, S. ;
Morales, J. ;
Garbet, X. ;
Huijsmans, G. T. A. ;
Passeron, C. ;
Fevrier, O. ;
Hoelzl, M. ;
Lessig, A. ;
Orain, F. .
NUCLEAR FUSION, 2017, 57 (11)
[2]   Quiescent H-Mode Plasmas with Strong Edge Rotation in the Cocurrent Direction [J].
Burrell, K. H. ;
Osborne, T. H. ;
Snyder, P. B. ;
West, W. P. ;
Fenstermacher, M. E. ;
Groebner, R. J. ;
Gohil, P. ;
Leonard, A. W. ;
Solomon, W. M. .
PHYSICAL REVIEW LETTERS, 2009, 102 (15)
[3]   Advances in understanding quiescent H-mode plasmas in DIII-D [J].
Burrell, KH ;
West, WP ;
Doyle, EJ ;
Austin, ME ;
Casper, TA ;
Gohil, P ;
Greenfield, CM ;
Groebner, RJ ;
Hyatt, AW ;
Jayakumar, RJ ;
Kaplan, DH ;
Lao, LL ;
Leonard, AW ;
Makowski, MA ;
McKee, GR ;
Osborne, TH ;
Snyder, PB ;
Solomon, WM ;
Thomas, DM ;
Rhodes, TL ;
Strait, EJ ;
Wade, MR ;
Wang, G ;
Zeng, L .
PHYSICS OF PLASMAS, 2005, 12 (05)
[4]   Probing non-linear MHD stability of the EDA H-mode in ASDEX Upgrade [J].
Cathey, A. ;
Hoelzl, M. ;
Gil, L. ;
Dunne, M. G. ;
Harrer, G. F. ;
Huijsmans, G. T. A. ;
Kalis, J. ;
Lackner, K. ;
Pamela, S. J. P. ;
Wolfrum, E. ;
Guenter, S. .
NUCLEAR FUSION, 2023, 63 (06)
[5]   MHD simulations of small ELMs at low triangularity in ASDEX Upgrade [J].
Cathey, A. ;
Hoelzl, M. ;
Harrer, G. ;
Dunne, M. G. ;
Huijsmans, G. T. A. ;
Lackner, K. ;
Pamela, S. J. P. ;
Wolfrum, E. ;
Guenter, S. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2022, 64 (05)
[6]   Non-linear extended MHD simulations of type-I edge localised mode cycles in ASDEX Upgrade and their underlying triggering mechanism [J].
Cathey, A. ;
Hoelzl, M. ;
Lackner, K. ;
Huijsmans, G. T. A. ;
Dunne, M. G. ;
Wolfrum, E. ;
Pamela, S. J. P. ;
Orain, F. ;
Guenter, S. .
NUCLEAR FUSION, 2020, 60 (12)
[7]   Bezier surfaces and finite elements for MED simulations [J].
Czarny, Olivier ;
Huysmans, Guido .
JOURNAL OF COMPUTATIONAL PHYSICS, 2008, 227 (16) :7423-7445
[8]   Chapter 2: Plasma confinement and transport [J].
Department of Electrical Engineering, PSTI, University of California, Los Angeles, CA, United States ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 ;
不详 .
Nucl Fusion, 2007, 6 (S18-S127) :S18-S127
[9]   Progress of HL-2A experiments and HL-2M program [J].
Duan, X. R. ;
Xu, M. ;
Zhong, W. L. ;
Liu, Y. ;
Song, X. M. ;
Liu, D. Q. ;
Wang, Y. Q. ;
Lu, B. ;
Shi, Z. B. ;
Zheng, G. Y. ;
Liu, Yong ;
Yang, Q. W. ;
Mao, W. C. ;
Li, Q. ;
Cai, L. J. ;
Ji, X. Q. ;
Liu, X. L. ;
Li, L. C. ;
Li, B. ;
Dong, J. Q. ;
Ding, X. T. ;
Yan, L. W. ;
Artaud, J. F. ;
Bai, X. Y. ;
Cao, J. Y. ;
Cao, Z. ;
Chen, L. ;
Chen, W. ;
Delpech, L. ;
Du, H. L. ;
Ekedahl, A. ;
Gao, Z. ;
Garcia, J. ;
Han, M. K. ;
Hao, G. Z. ;
He, H. M. ;
Hoang, G. T. ;
Huang, M. ;
Isobe, M. ;
Jiang, M. ;
Liang, A. S. ;
Liu, Y. Q. ;
Li, D. ;
Li, H. J. ;
Li, J. Q. ;
Li, J. X. ;
Li, Qing ;
Li, Yongge ;
Long, T. ;
Mazon, D. .
NUCLEAR FUSION, 2022, 62 (04)
[10]   Global performance enhancements via pedestal optimisation on ASDEX Upgrade [J].
Dunne, M. G. ;
Frassinetti, L. ;
Beurskens, M. N. A. ;
Cavedon, M. ;
Fietz, S. ;
Fischer, R. ;
Giannone, L. ;
Huijsmans, G. T. A. ;
Kurzan, B. ;
Laggner, F. ;
McCarthy, P. J. ;
McDermott, R. M. ;
Tardini, G. ;
Viezzer, E. ;
Willensdorfer, M. ;
Wolfrum, E. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2017, 59 (02)