Theoretical studies of low-frequency shear Alfvén waves in reversed shear tokamak PLasmas

被引:0
|
作者
Ma, Rui-Rui [1 ]
Chen, Liu [2 ,3 ]
Qiu, Zhi-Yong [2 ]
机构
[1] Southwestern Inst Phys, Chengdu 610041, Peoples R China
[2] Zhejiang Univ, Dept Phys, Hangzhou 310027, Peoples R China
[3] Univ Calif Irvine, Deptartment Phys & Astron, Irvine, CA 92697 USA
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
low frequency shear Alfven waves; energetic particles; instabilities; gyrokinetic; KINETIC BALLOONING MODES; ENERGETIC PARTICLES; ALFVEN EIGENMODES; INSTABILITIES; EXCITATION; STABILITY; DRIVEN;
D O I
10.7498/aps.72.20230255
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The low-frequency Alfvenic fluctuations in the kinetic thermal-ion gap frequency range have aroused the interest of researchers since they can interact with background thermal particles and/or energetic particles. In the theoretical framework of the general fishbone-like dispersion relation (GFLDR), we theoretically investigate and delineate the linear wave properties of the low-frequency shear Alfven wave excited by energetic and/or thermal particles observed in tokamak experiments with reversed magnetic shear. These low-frequency shear Alfven waves are closely related to the dedicated experiment on energetic ion-driven low-frequency instabilities conducted on DIII-D in 2019. Therefore, adopting the representative experimental equilibrium parameters of DIII-D, in this work we demonstrate that the experimentally observed low-frequency modes and beta-induced Alfven eigenmodes (BAEs) are, respectively, the reactive-type unstable mode and dissipative-type unstable mode, each with dominant Alfvenic polarization, thus the former being more precisely called low-frequency Alfven modes (LFAMs). More specifically, due to diamagnetic and trapped particle effects, the LFAM can be coupled with the beta-induced Alfven-acoustic mode (BAAE) in the low-frequency range (frequency much less than the thermal-ion transit frequency and/or bounce frequency), or with the BAE in the high frequency range (frequency higher than or comparable to the thermal-ion transit frequency), resulting in reactive-type instabilities. Moreover, due to different instability mechanisms, the maximal drive of BAEs occurs in comparison with LFAMs, when the minimum of the safety factor ( ) deviates from a rational number. qmin Meanwhile, the BAE eigenfunction peaks at the radial position of the maximum energetic particle pressure gradient, resulting in a large deviation from the qmin surface. The ascending frequency spectrum patterns of the experimentally observed BAEs and LFAMs can be theoretically reproduced by varying , and they can also qmin be well explained based on the GFLDR. In particular, it is confirmed that the stability of the BAAE is not affected by energetic ions, which is consistent with the first-principle-based theory predictions and simulation results. The present analysis illustrates the solid predictive capability of the GFLDR and its practical applications in enhancing the ability to explain experimental and numerical simulation results.
引用
收藏
页数:17
相关论文
共 57 条
  • [41] Poloidal flow driven by ion-temperature-gradient turbulence in tokamaks
    Rosenbluth, MN
    Hinton, FL
    [J]. PHYSICAL REVIEW LETTERS, 1998, 80 (04) : 724 - 727
  • [42] Energetic particle instabilities in fusion plasmas
    Sharapov, S. E.
    Alper, B.
    Berk, H. L.
    Borba, D. N.
    Breizman, B. N.
    Challis, C. D.
    Classen, I. G. J.
    Edlund, E. M.
    Eriksson, J.
    Fasoli, A.
    Fredrickson, E. D.
    Fu, G. Y.
    Garcia-Munoz, M.
    Gassner, T.
    Ghantous, K.
    Goloborodko, V.
    Gorelenkov, N. N.
    Gryaznevich, M. P.
    Hacquin, S.
    Heidbrink, W. W.
    Hellesen, C.
    Kiptily, V. G.
    Kramer, G. J.
    Lauber, P.
    Lilley, M. K.
    Lisak, M.
    Nabais, F.
    Nazikian, R.
    Nyqvist, R.
    Osakabe, M.
    von Thun, C. Perez
    Pinches, S. D.
    Podesta, M.
    Porkolab, M.
    Shinohara, K.
    Schoepf, K.
    Todo, Y.
    Toi, K.
    Van Zeeland, M. A.
    Voitsekhovich, I.
    White, R. B.
    Yavorskij, V.
    [J]. NUCLEAR FUSION, 2013, 53 (10)
  • [43] MHD spectroscopy through detecting toroidal Alfven eigenmodes and Alfven wave cascades
    Sharapov, SE
    Testa, D
    Alper, B
    Borba, DN
    Fasoli, A
    Hawkes, NC
    Heeter, RF
    Mantsinen, M
    Von Hellermann, MG
    [J]. PHYSICS LETTERS A, 2001, 289 (03) : 127 - 134
  • [44] KINETIC-BALLOONING-MODE THEORY IN GENERAL GEOMETRY
    TANG, WM
    CONNOR, JW
    HASTIE, RJ
    [J]. NUCLEAR FUSION, 1980, 20 (11) : 1439 - 1453
  • [45] THEORY OF KINETIC BALLOONING MODES EXCITED BY ENERGETIC PARTICLES IN TOKAMAKS
    TSAI, ST
    CHEN, L
    [J]. PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (09): : 3284 - 3290
  • [46] GLOBAL ALFVEN MODES - THEORY AND EXPERIMENT
    TURNBULL, AD
    STRAIT, EJ
    HEIDBRINK, WW
    CHU, MS
    DUONG, HH
    GREENE, JM
    LAO, LL
    TAYLOR, TS
    THOMPSON, SJ
    [J]. PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (07): : 2546 - 2553
  • [47] Analysis of Alfven eigenmode destabilization in DIII-D high poloidal β discharges using a Landau closure model
    Varela, J.
    Spong, D. A.
    Garcia, L.
    Huang, J.
    Murakami, M.
    Garofalo, A. M.
    Qian, J. P.
    Holcomb, C. T.
    Hyatt, A. W.
    Ferron, J. R.
    Collins, C. S.
    Ren, Q. L.
    McClenaghan, J.
    Guo, W.
    [J]. NUCLEAR FUSION, 2018, 58 (07)
  • [48] Kinetic theory of low-frequency Alfven modes in tokamaks
    Zonca, F
    Chen, L
    Santoro, RA
    [J]. PLASMA PHYSICS AND CONTROLLED FUSION, 1996, 38 (11) : 2011 - 2028
  • [49] Destabilization of energetic particle modes by localized particle sources
    Zonca, F
    Chen, L
    [J]. PHYSICS OF PLASMAS, 2000, 7 (11) : 4600 - 4608
  • [50] Electron fishbones: theory and experimental evidence
    Zonca, F.
    Buratti, P.
    Cardinali, A.
    Chen, L.
    Dong, J. -Q.
    Long, Y. -X.
    Milovanov, A. V.
    Romanelli, F.
    Smeulders, P.
    Wang, L.
    Wang, Z. -T.
    Castaldo, C.
    Cesario, R.
    Giovannozzi, E.
    Marinucci, M.
    Ridolfini, V. Pericoli
    [J]. NUCLEAR FUSION, 2007, 47 (11) : 1588 - 1597