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Featured researches published by Adi Liu.


Review of Scientific Instruments | 2014

Design of interferometer system for Keda Torus eXperiment using terahertz solid-state diode sources.

Jinlin Xie; Haibo Wang; W. X. Ding; Hong Li; Tao Lan; Adi Liu; Wandong Liu; Changxuan Yu

A solid-state source based terahertz (THz) interferometer diagnostic system has been designed and characterized for the Keda Torus eXperiment (KTX). The THz interferometer utilizes the planar diodes based frequency multiplier (X48) to provide the probing beam at fixed frequency 0.650 THz, and local oscillator is provided by an independent solid-state diode source with tunable frequency (0.650 THz +/- 10 MHz). Both solid-state sources have approximately 1 mW power. The planar-diode mixers optimized for high sensitivity, ∼750 mV/mW, are used in the heterodyne detection system, which permits multichannel interferometer on KTX with a low phase noise. A sensitivity of ⟨nel⟩min = 4.5 × 10(16) m(-2) and a temporal resolution of 0.2 μs have been achieved during the initial bench test.


Review of Scientific Instruments | 2016

The eddy current probe array for Keda Torus eXperiment

Zichao Li; Hong Li; Cui Tu; J. Q. Hu; Wei You; Bing Luo; Mingsheng Tan; Yolbarsop Adil; Y. Wu; Biao Shen; B.J. Xiao; Ping Zhang; Wenzhe Mao; Hai Wang; Xiaohui Wen; Haiyang Zhou; Jinlin Xie; T. Lan; Adi Liu; W. X. Ding; C. Xiao; Wandong Liu

In a reversed field pinch device, the conductive shell is placed as close as possible to the plasma so as to balance the plasma during discharge. Plasma instabilities such as the resistive wall mode and certain tearing modes, which restrain the plasma high parameter operation, respond closely with conditions in the wall, in essence the eddy current present. Also, the effect of eddy currents induced by the external coils cannot be ignored when active control is applied to control instabilities. One diagnostic tool, an eddy current probe array, detects the eddy current in the composite shell. Magnetic probes measuring differences between the inner and outer magnetic fields enable estimates of the amplitude and angle of these eddy currents. Along with measurements of currents through the copper bolts connecting the poloidal shield copper shells, we can obtain the eddy currents over the entire shell. Magnetic field and eddy current resolutions approach 2 G and 6 A, respectively. Additionally, the vortex electric field can be obtained by eddy current probes. As the conductivity of the composite shell is high, the eddy current probe array is very sensitive to the electric field and has a resolution of 0.2 mV/cm. In a bench test experiment using a 1/4 vacuum vessel, measurements of the induced eddy currents are compared with simulation results based on a 3D electromagnetic model. The preliminary data of the eddy currents have been detected during discharges in a Keda Torus eXperiment device. The typical value of toroidal and poloidal eddy currents across the magnetic probe coverage rectangular area could reach 3.0 kA and 1.3 kA, respectively.


Review of Scientific Instruments | 2016

Compact and lightweight support platform with electromagnetic disturbance elimination for interferometer on reversed field pinch Keda Torus eXperiment

Wenzhe Mao; Peng Yuan; Jian Zheng; W. X. Ding; Hong Li; Tao Lan; Adi Liu; Wandong Liu; Jinlin Xie

A compact and lightweight support platform has been used as a holder for the interferometer system on the Keda Torus eXperiment (KTX), which is a reversed field pinch device. The vibration caused by the interaction between the time-varying magnetic field and the induced current driven in the metal optical components has been measured and, following comparison with the mechanical vibration of the KTX device and the refraction effect of the ambient turbulent air flow, has been identified as the primary vibration source in this case. To eliminate this electromagnetic disturbance, nonmetallic epoxy resin has been selected as the material for the support platform and the commercially available metal optical mounts are replaced. Following these optimization steps and mechanical reinforcements, the stability of the interferometer platform has improved significantly. The phase shift caused by the vibration has been reduced to the level of background noise.


Radiation Effects and Defects in Solids | 2017

Analysis of sawtooth collapse time using electron cyclotron emission imaging on EAST tokamak

Zhenling Zhao; Jinlin Xie; Chengming Qu; Wang Liao; Hong Li; Tao Lan; Adi Liu; Ge Zhuang; Wandong Liu

ABSTRACT Electron cyclotron emission imaging (ECEI), as an advanced diagnostic, provides two-dimensional (2D) images of electron temperature fluctuation in the core plasma region. The ECEI system on Experimental Advanced Superconducting Tokamak (EAST) tokamak consists of 384 channels by 24 (vertical) × 16 (horizontal). The system nearly covers the whole surface in cross-section of EAST. Here, we present a quantitative method to estimate the sawtooth collapse time. All of the electron temperature fluctuations inside the surface are summed up, and the collapse time is estimated as the time lag between the maximum and minimum values of the total fluctuation during one sawtooth cycle. Using this method, statistical analysis of sawtooth behaviors is studied in the EAST Ohmic heating plasma. Relationships of heat flux, sawtooth period and collapse time are also presented.


Fusion Science and Technology | 2017

Design of a Feedback Control System for Keda Torus Experiment Equilibrium Field Power Supply

Wei Bai; T. Lan; Lei Yang; Chijin Xiao; Hong Li; Wenzhe Mao; Wei You; Hangqi Xu; Tijian Deng; Junfeng Zhu; Bing Luo; Peng Fu; Xiaohui Wen; Haiyang Zhou; Hai Wang; Shude Wan; Adi Liu; Jinlin Xie; Weixing Ding; Wandong Liu

Abstract An equilibrium field (EQ) power supply (PS) circuit using a feedback H-bridge pulse-width-modulation controller has been developed to control the plasma horizontal position and to satisfy the requirement of plasma equilibrium in the Keda Torus eXperiment (KTX) reversed field pinch. Results from simulations of plasma discharge aimed at achieving plasma equilibrium demonstrate the success of the PS circuit design. Additionally, this design provides a feasible control solution for achieving equilibrium conditions in future KTX PS upgrades. The details of the EQ model and simulations of the poloidal field circuit are presented and discussed in this technical note.


Review of Scientific Instruments | 2018

In situ relative self-dependent calibration of electron cyclotron emission imaging via shape matching

Dongqi Han; Jinlin Xie; Azam Hussain; B. Gao; Chengming Qu; Wang Liao; Xinhang Xu; Feixue Gao; Hong Li; Tao Lan; Adi Liu; Ge Zhuang; Wandong Liu

Electron Cyclotron Emission Imaging (ECEI) is a diagnostic system which measures 2-D electron temperature profiles with high spatial-temporal resolution. Usually only the normalized electron temperature fluctuations are utilized to investigate the magnetohydrodynamics modes due to the difficulties of ECEI calibration. In this paper, we developed a self-dependent calibration method for 24 × 16 channel high-resolution ECEI on the Experimental Advanced Superconducting Tokamak. The technique of shape matching is applied to solve for the matrix of the calibration coefficients. The calibrated area is further expanded to an occupation ratio of 88% observation area by utilizing the features of sawtooth crash. The result is self-consistent and consistent with calibrated 1D ECE measurement.


Review of Scientific Instruments | 2017

Electromagnetic diagnostic system for the Keda Torus eXperiment

Cui Tu; Adi Liu; Zichao Li; Mingsheng Tan; Bing Luo; Wei You; Chenguang Li; Wei Bai; Chenshuo Fu; Fangcheng Huang; B.J. Xiao; Biao Shen; Tonghui Shi; D. M. Chen; Wenzhe Mao; Hong Li; Jinglin Xie; Tao Lan; W. X. Ding; C. Xiao; Wandong Liu

A system for electromagnetic measurements was designed and installed on the Keda Torus eXperiment (KTX) reversed field pinch device last year. Although the unique double-C structure of the KTX, which allows the machine to be opened easily without disassembling the poloidal field windings, makes the convenient replacement and modification of the internal inductive coils possible, it can present difficulties in the design of flux coils and magnetic probes at the two vertical gaps. Moreover, the KTX has a composite shell consisting of a 6 mm stainless steel vacuum chamber and a 1.5 mm copper shell, which results in limited space for the installation of saddle sensors. Therefore, the double-C structure and composite shell should be considered, especially during the design and installation of the electromagnetic diagnostic system (EDS). The inner surface of the vacuum vessel includes two types of probes. One type is for the measurement of the global plasma parameters, and the other type is for studying the local behavior of the plasma and operating the new saddle coils. In addition, the probes on the outer surface of the composite shell are used for measurements of eddy currents. Finally, saddle sensors for radial field measurements for feedback control were installed between the conducting shell and the vacuum vessel. The entire system includes approximately 1100 magnetic probes, 14 flux coils, 4×26×2 saddle sensors, and 16 Rogowski coils. Considering the large number of probes and limited space available in the vacuum vessel, the miniaturization of the probes and optimization of the probe distribution are necessary. In addition, accurate calibration and careful mounting of the probes are also required. The frequency response of the designed magnetic probes is up to 200 kHz, and the resolution is 1 G. The EDS, being spherical and of high precision, is one of the most basic and effective diagnostic tools of the KTX and meets the demands imposed by requirements on basic machine operating information and future studies.


Physics of Plasmas | 2017

Determination of plasma displacement based on eddy current diagnostics for the Keda Torus eXperiment

Cui Tu; Hong Li; Adi Liu; Zichao Li; Yuan Zhang; Wei You; Mingsheng Tan; Bing Luo; Yolbarsop Adil; J. Q. Hu; Y. Wu; Wentan Yan; Jinlin Xie; Tao Lan; Wenzhe Mao; W. X. Ding; C. Xiao; Ge Zhuang; Wandong Liu

The measurement of plasma displacement is one of the most basic diagnostic tools in the study of plasma equilibrium and control in a toroidal magnetic confinement configuration. During pulse discharge, the eddy current induced in the vacuum vessel and shell will produce an additional magnetic field at the plasma boundary, which will have a significant impact on the measurement of plasma displacement using magnetic probes. In the newly built Keda Torus eXperiment (KTX) reversed field pinch device, the eddy current in the composite shell can be obtained at a high spatial resolution. This device offers a new way to determine the plasma displacement for KTX through the multipole moment expansion of the eddy current, which can be obtained by unique probe arrays installed on the inner and outer surfaces of the composite shell. In an ideal conductor shell approximation, the method of multipole moment expansion of the poloidal eddy current for measuring the plasma displacement in toroidal coordinates, is more acc...


Fusion Engineering and Design | 2016

Design of a stabilizing shell for KTX

Wei You; Hong Li; Mingsheng Tan; Mingjian Lu; Y. Wu; Wenzhe Mao; Wei Bai; Cui Tu; Bing Luo; Zichao Li; Yolbarsop Adil; J. Q. Hu; Yuntao Song; Qingxi Yang; Ping Zhang; J. L. Xie; T. Lan; Adi Liu; W. X. Ding; C. Xiao; Wandong Liu


EPJ Web of Conferences | 2017

Interferometer system for Keda Torus eXperiment using terahertz solid-state diode sources

Wenzhe Mao; Jinlin Xie; W. X. Ding; Hong Li; Tao Lan; Adi Liu; Wandong Liu

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Wandong Liu

University of Science and Technology of China

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Jinlin Xie

University of Science and Technology of China

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Hong Li

University of Science and Technology of China

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Wenzhe Mao

University of Science and Technology of China

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W. X. Ding

University of California

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Tao Lan

University of Science and Technology of China

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Wei You

University of Science and Technology of China

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Mingsheng Tan

University of Science and Technology of China

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C. Xiao

University of Saskatchewan

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Bing Luo

University of Science and Technology of China

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