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Investigation of GAM zonal flows near the pedestal region of H-mode on EAST tokamak

Authors :
Xi Feng
AhDi Liu
Ge Zhuang
Chu Zhou
X.L. Zou
HaiQing Liu
Lei Ye
ZongLiang Dai
FeiFei Long
S.X. Wang
L. Wang
L.Q. Xu
H.L. Zhao
J. Zhang
X.M. Zhong
M.Y. Wang
S.F. Wang
L.T. Gao
W.X. Shi
S.C. Qiu
L.X. Li
Y.F. Feng
X.Y. Chen
Y.Y. Zhang
T. Lan
H. Li
W.Z. Mao
Z.X. Liu
W.X. Ding
J.L. Xie
W.D. Liu
Z.B. Shi
Source :
Nuclear Fusion, Vol 65, Iss 2, p 026036 (2025)
Publication Year :
2025
Publisher :
IOP Publishing, 2025.

Abstract

Geodesic acoustic mode (GAM) is the finite frequency counterpart of zonal flow in toroidal plasmas, which could be excited by and regulate turbulence. This article reports a stationary eigenmode GAM at the inner side of the edge radial electric field contributing to an extreme high confinement plasma with $H_{98}\gt 1.3$ . Such GAM could be observed exclusively in the vicinity of the pedestal top, but not in the pedestal region itself, which represents a previously unreported phenomenon. The bicoherence analysis demonstrates a robust interaction between the GAM and quasi coherent mode (QCM). Statistical evidence indicates that GAMs with such characteristics display a proclivity for a large q _95 and low collisionality in all instances of H-mode accompanied by QCM. Based on the Gyro-kinetic simulation, the QCM is the low n trapped electron mode (TEM) and that the GAM is driven by TEM. Furthermore, the simulations show that the amplitude of GAM declines in conjunction with an increase in the collisionality, which is consistent with the experimental statistics. Additionally, the simulations demonstrate that the turbulent transport exhibits a corresponding decrease as GAM amplitude declines, implying that GAM and its interaction with the QCM would play an important role in the stability and confinement enhancement of such H-mode.

Details

Language :
English
ISSN :
17414326 and 00295515
Volume :
65
Issue :
2
Database :
Directory of Open Access Journals
Journal :
Nuclear Fusion
Publication Type :
Academic Journal
Accession number :
edsdoj.9349aee074203b71c7f3ff71e422f
Document Type :
article
Full Text :
https://doi.org/10.1088/1741-4326/ada4bf