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Featured researches published by Z.H. Jiang.


Nuclear Fusion | 2016

Simulation of runaway electrons, transport affected by J-TEXT resonant magnetic perturbation

Z.H. Jiang; X H Wang; Z.Y. Chen; D. W. Huang; X.F. Sun; T. Xu; G. Zhuang

The topology of a magnetic field and transport properties of runaway electrons can be changed by a resonant magnetic perturbation field. The J-TEXT magnetic topology can be effectively altered via static resonant magnetic perturbation (SRMP) and dynamic resonant magnetic perturbation (DRMP). This paper studies the effect of resonant magnetic perturbation (RMP) on the confinement of runaway electrons via simulating their drift orbits in the magnetic perturbation field and calculating the orbit losses for different runaway initial energies and different runaway electrons, initial locations. The model adopted is based on Hamiltonian guiding center equations for runaway electrons, and the J-TEXT magnetic turbulences and RMP are taken into account. The simulation indicates that the loss rate of runaway electrons is sensitive to the radial position of electrons. The loss of energetic runaway beam is dominated by the shrinkage of the confinement region. Outside the shrinkage region of the runaway electrons are lost rapidly. Inside the shrinkage region the runaway beam is confined very well and is less sensitive to the magnetic perturbation. The experimental result on the response of runaway transport to the application RMP indicates that the loss of runaway electrons is dominated by the shrinkage of the confinement region, other than the external magnetic perturbation.


Nuclear Fusion | 2016

The behavior of runaway current in massive gas injection fast shutdown plasmas in J-TEXT

Z.Y. Chen; D. W. Huang; Y.H. Luo; Y. Tang; Y B Dong; L. Zeng; R. H. Tong; S.Y. Wang; Y. N. Wei; X H Wang; Xiang Jian; J. C. Li; X. Q. Zhang; B. Rao; W. Yan; T K Ma; Qiming Hu; Z. J. Yang; L. Gao; Yonghua Ding; Zhanhui Wang; Ming Zhang; G. Zhuang; Yuan Pan; Z.H. Jiang

Runaway currents following disruptions have an important effect on the first wall in current tokamaks and will be more severe in next generation tokamaks. The behavior of runaway currents in massive gas injection (MGI) induced disruptions have been investigated in the J-TEXT tokamak. The cold front induced by the gas jet penetrates helically along field lines, preferentially toward the high field side and stops at a location near the q = 2 surface before the disruption. When the cold front reaches the q = 2 surface it initiates magnetohydrodynamic activities and results in disruption. It is found that the MGI of He or Ne results in runaway free shutdown in a large range of gas injections. Mixture injection of He and Ar (90% He and 10%Ar) consistently results in runaway free shutdown. A moderate amount of Ar injection could produce significant runaway current. The maximum runaway energy in the runaway plateau is estimated using a simplified model which neglects the drag forces and other energy loss mechanisms. The maximum runaway energy increases with decreasing runaway current. Imaging of the runaway beam using a soft x-ray array during the runaway current plateau indicates that the runaway beam is located in the center of the plasma. Resonant magnetic perturbation (RMP) is applied to reduce the runaway current successfully during the disruption phase in a small scale tokamak, J-TEXT. When the runaway current builds up, the application of RMP cannot decouple the runaway beam due to the lower sensitivity of the energetic runaway electrons to the magnetic perturbation.


Nuclear Fusion | 2016

Enhancement of runaway production by resonant magnetic perturbation on J-TEXT

Z.Y. Chen; D. W. Huang; V.A. Izzo; R. H. Tong; Z.H. Jiang; Qiming Hu; Y. N. Wei; W. Yan; B. Rao; S.Y. Wang; T K Ma; S.C. Li; Z. J. Yang; D.H. Ding; Zhanhui Wang; Ming Zhang; G. Zhuang; Yuan Pan; J-Text Team

The suppression of runaways following disruptions is key for the safe operation of ITER. The massive gas injection (MGI) has been developed to mitigate heat loads, electromagnetic forces and runaway electrons (REs) during disruptions. However, MGI may not completely prevent the generation of REs during disruptions on ITER. Resonant magnetic perturbation (RMP) has been applied to suppress runaway generation during disruptions on several machines. It was found that strong RMP results in the enhancement of runaway production instead of runaway suppression on J-TEXT. The runaway current was about 50% pre-disruption plasma current in argon induced reference disruptions. With moderate RMP, the runway current decreased to below 30% pre-disruption plasma current. The runaway current plateaus reach 80% of the pre-disruptive current when strong RMP was applied. Strong RMP may induce large size magnetic islands that could confine more runaway seed during disruptions. This has important implications for runaway suppression on large machines.


Review of Scientific Instruments | 2018

Measurement of the toroidal radiation asymmetry during massive gas injection triggered disruptions on J-TEXT

R. H. Tong; Z. Y. Chen; Z.H. Jiang; Xiaoqing Zhang; Z. F. Cheng; L. Z. Liu; Wenju Li; W. Yan; Y. N. Wei; Z. F. Lin; Yunhui Huang; Z. J. Yang

Disruptions have the potential to cause severe damage to large tokamaks like ITER. The mitigation of disruption damage is one of the essential issues for the tokamak. Massive gas injection (MGI) is a technique in which large amounts of a noble gas are injected into the plasma in order to safely radiate the plasma energy evenly over the entire plasma-facing wall. However, the radiated energy during the disruption triggered by massive gas injection is found to be toroidally asymmetric. In order to investigate the spatial and temporal structures of the radiation asymmetry, the radiated power diagnostics for the J-TEXT tokamak have been upgraded. The multi-channel arrays of absolute extreme ultraviolet photodiodes have been upgraded at four different toroidal positions to investigate the radiation asymmetries during massive gas injection. It is found that the toroidal asymmetry is associated with plasma properties and MGI induced MHD activities.


Review of Scientific Instruments | 2018

Design of a shattered pellet injection system on J-TEXT tokamak

Yuansheng Li; Z. Y. Chen; Y. N. Wei; R. H. Tong; W. Yan; Z. F. Lin; Z. J. Yang; Z.H. Jiang

Disruptions have the possibility of causing severe wall damage to large tokamaks like ITER. The mitigation of disruption damage is essential to the safe operation of a large-scale tokamak. The shattered pellet injection (SPI) technique, which is regarded as the primary injection method for ITER, presents several advantages relative to massive gas injection, including more rapid particle delivery, higher total particle assimilation, and more centrally peaked particle deposition. A dedicated argon SPI system that focuses on disruption mitigation and runaway current dissipation has been designed for the Joint Texas Experimental Tokamak (J-TEXT). A refrigerator is used to form a single argon pellet at around 64 K. The pellet will be shaped with a 5 mm diameter and a 1.5-10 mm length. Helium gas at room temperature will be used as a propellant gas for pellet acceleration. The pellet can be injected with a speed of 150-300 m/s. The time interval between injection cycles is about 8 min. The pellet will be shattered at the edge of the plasma and then injected into the core of plasma. The first experiments of SPI fast shutdown and runaway current dissipation have been performed.


Review of Scientific Instruments | 2016

Measurement of the internal magnetic fluctuation by the transport of runaways on J-TEXT

Z.Y. Chen; D. W. Huang; R. H. Tong; W. Yan; Y. N. Wei; T K Ma; Z.H. Jiang; X. Q. Zhang; Z. P. Chen; Z. J. Yang; G. Zhuang

The measurement of internal magnetic fluctuation is important for the study of transport in tokamak plasmas. The runaway electron transport induced by the sawtooth crash can be used to obtain the internal magnetic fluctuation. Inversed sawtooth-like activities on hard x-ray (HXR) fluxes following sawtooth activities were observed after the application of electrode biasing on J-TEXT tokamak. The runaway diffusion coefficient Dr is deduced to be about 30 m2/s according to the time delay of HXR flux peaks to the sawtooth crashes. The averaged value of normalized magnetic fluctuation in the discharges with electrode biasing was increased to the order of 1 × 10-4.


Nuclear Fusion | 2017

Progress of recent experimental research on the J-TEXT tokamak

G. Zhuang; K. W. Gentle; Zhongyong Chen; Z. P. Chen; Z. J. Yang; Wei Zheng; Qiming Hu; J. Chen; B. Rao; W.L. Zhong; K.J. Zhao; L. Gao; Z. F. Cheng; X. Q. Zhang; Lu Wang; Z.H. Jiang; T. Xu; Ming Zhang; Zhijiang Wang; Yonghua Ding; K.X. Yu; Xiwei Hu; Y. Pan; H. Huang


Nuclear Fusion | 2018

Study of MHD mode and cooling process during disruptions triggered by impurities injection in J-TEXT

Y. Huang; Z. Y. Chen; Qiming Hu; Q. Yu; Z.H. Jiang; Y. N. Wei; Pengjuan Su; Chengshuo Shen; Daojing Guo; Z. J. Yang; X.M. Pan; Mingxiang Huang; Qinxue Cai; Tong Wang; Z.F. Lin; R. H. Tong; W. Yan; Z. P. Chen; Yonghua Ding; Y. Liang; J-Text Team


Nuclear Fusion | 2018

Suppression of runaway electrons by mode locking during disruptions on J-TEXT

Z. Y. Chen; Z.F. Lin; D. W. Huang; R. H. Tong; Qiming Hu; Y. N. Wei; W. Yan; A.J. Dai; X. Q. Zhang; B. Rao; Z. J. Yang; L. Gao; Y.B. Dong; L. Zeng; Yonghua Ding; Zhanhui Wang; Ming Zhang; G. Zhuang; Y. Liang; Y. Pan; Z.H. Jiang; J-Text Team


Plasma Physics and Controlled Fusion | 2017

Suppression of runaway current generation by supersonic molecular beam injection during disruptions on J-TEXT

D. W. Huang; Z. Y. Chen; R. H. Tong; W. Yan; S.Y. Wang; Y. N. Wei; T K Ma; A.J. Dai; X L Wang; Z.H. Jiang; Z. J. Yang; G. Zhuang; Y. Pan; J-Text Team

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Z. J. Yang

Huazhong University of Science and Technology

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G. Zhuang

Huazhong University of Science and Technology

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R. H. Tong

Huazhong University of Science and Technology

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W. Yan

Huazhong University of Science and Technology

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Y. N. Wei

Huazhong University of Science and Technology

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D. W. Huang

Huazhong University of Science and Technology

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Z. Y. Chen

Huazhong University of Science and Technology

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Qiming Hu

Huazhong University of Science and Technology

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B. Rao

Huazhong University of Science and Technology

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J-Text Team

Huazhong University of Science and Technology

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