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Effect of sheared E × B flow on the blob dynamics in the scrape-off layer of HL-2A tokamak

Published online by Cambridge University Press:  11 November 2022

W.C. Wang
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
J. Cheng*
Affiliation:
Institute of Fusion Science, School of Physical Science and Technology, Southwest Jiaotong University, Chengdu 610031, PR China
Z.B. Shi
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
L.W. Yan
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
Z.H. Huang
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
N. Wu
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
Q. Zou
Affiliation:
Institute of Fusion Science, School of Physical Science and Technology, Southwest Jiaotong University, Chengdu 610031, PR China
Y.J. Zhu
Affiliation:
Institute of Fusion Science, School of Physical Science and Technology, Southwest Jiaotong University, Chengdu 610031, PR China
X. Chen
Affiliation:
Institute of Fusion Science, School of Physical Science and Technology, Southwest Jiaotong University, Chengdu 610031, PR China
J.Q. Dong
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China Institute for Fusion Theory and Simulation, Zhejiang University, Hangzhou 310027, PR China
W.L. Zhong
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
M. Xu
Affiliation:
Southwestern Institute of Physics, Chengdu, Sichuan 610041, PR China
*
Email address for correspondence: chengj@swjtu.edu.cn
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Abstract

The effect of sheared E × B flow on the blob dynamics in the scrape-off layer (SOL) of HL-2A tokamak has been studied during the plasma current ramp-up in ohmically heated deuterium plasmas by the combination of poloidal and radial Langmuir probe arrays. The experimental results indicate that the SOL sheared E × B flow is substantially enhanced as the plasma current exceeds a certain value and the strong sheared E × B flow has the ability to slow the blob radial motion via stretching its poloidal correlation length. The locally accumulated blobs are suggested to be responsible for the increase of plasma density just outside the Last Closed Flux Surface (LCFS) observed in this experiment. The results presented here reveal the significant role played by the strong sheared E × B flow on the blob dynamics, which provides a potential method to control the SOL width by modifying the sheared E × B flow in future tokamak plasmas.

Information

Type
Research Article
Copyright
Copyright © The Author(s), 2022. Published by Cambridge University Press
Figure 0

Figure 1. (a) Bird's eye view of Langmuir probe arrays in the toroidal direction; (b) schematic illustration of the poloidal and radial arrays of probes; (c) equilibrium configuration reconstructed by the EFIT code and the location of probe measurement (the thick solid black line represents the poloidal limiter).

Figure 1

Figure 2. Time traces of the plasma current (a), the line-averaged density (b), the electron temperature and plasma density (c), the radial electric field (d) measured at Δr = +10 mm and the plasma horizontal displacement (e).

Figure 2

Figure 3. The temporal evolutions of the plasma current (a), the spatio-temporal distributions of skewness (b), E × B shearing rate (c) and the inverse scale of density gradient (d).

Figure 3

Figure 4. Comparison of radial profiles of skewness (a), E × B shearing rates (b), the inverse scale of density gradient (c) and ion saturation current $({I_s} \propto {n_e})$ (d) (the vertical line represents the approximate position of the LCFS).

Figure 4

Figure 5. Contour plot of the coherence between array A and array B toroidally separated by 2100 mm for different E × B shearing rates ${\omega _{E \times B}} = 0.12 \times {10^5}\;{\textrm{s}^{ - 1}}$ (a), $\; {\omega _{E \times B}} = 0.48 \times {10^5}\;{\textrm{s}^{ - 1}}$ (b) and ${\omega _{E \times B}} = 1.08 \times {10^5}\;{\textrm{s}^{ - 1}}$ (c).

Figure 5

Figure 6. Statistical analysis of blob poloidal correlation length as a function of blob amplitude for the different E × B shearing rates ${\omega _{E \times B}}$. The probe measurement is localized at Δr = +10 mm.

Figure 6

Figure 7. Comparison of blob radial velocity (a) and its internal potential (b) with amplitude >2.5σ estimated by CCA in the scenarios with different E × B flow shearing rates ${\omega _{E \times B}}$. The measured radial position is at Δr = +10 mm.

Figure 7

Figure 8. The time traces of the E × B flow shearing rate together with normalized density fluctuation (a), the blob radial velocity $( > 2.5\sigma )$ (b) and the inverse scale length of density gradient (c), The probe measurement position is approximately localized at Δr = +10 mm.

Figure 8

Figure 9. Blob radial velocity and density gradient against the E × B shearing rate. The measure radial position is at the normalized radial position at Δr = +10 mm.