C. R. Wu
Chinese Academy of Sciences
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by C. R. Wu.
Review of Scientific Instruments | 2015
Ling Zhang; Shigeru Morita; Z. Z. Xu; Zhenwei Wu; Pengfei Zhang; C. R. Wu; Wei Gao; Tetsutarou Ohishi; Motoshi Goto; Junsong Shen; Yingjie Chen; Xiang Liu; Yumin Wang; Chunfeng Dong; Hongmin Zhang; Xianli Huang; X.Z. Gong; Liqun Hu; Junlin Chen; Xiaodong Zhang; Baonian Wan; Jiangang Li
A flat-field extreme ultraviolet (EUV) spectrometer working in the 20-500 Å wavelength range with fast time response has been newly developed to measure line emissions from highly ionized tungsten in the Experimental Advanced Superconducting Tokamak (EAST) with a tungsten divertor, while the monitoring of light and medium impurities is also an aim in the present development. A flat-field focal plane for spectral image detection is made by a laminar-type varied-line-spacing concave holographic grating with an angle of incidence of 87°. A back-illuminated charge-coupled device (CCD) with a total size of 26.6 × 6.6 mm(2) and pixel numbers of 1024 × 255 (26 × 26 μm(2)/pixel) is used for recording the focal image of spectral lines. An excellent spectral resolution of Δλ0 = 3-4 pixels, where Δλ0 is defined as full width at the foot position of a spectral line, is obtained at the 80-400 Å wavelength range after careful adjustment of the grating and CCD positions. The high signal readout rate of the CCD can improve the temporal resolution of time-resolved spectra when the CCD is operated in the full vertical binning mode. It is usually operated at 5 ms per frame. If the vertical size of the CCD is reduced with a narrow slit, the time response becomes faster. The high-time response in the spectral measurement therefore makes possible a variety of spectroscopic studies, e.g., impurity behavior in long pulse discharges with edge-localized mode bursts. An absolute intensity calibration of the EUV spectrometer is also carried out with a technique using the EUV bremsstrahlung continuum at 20-150 Å for quantitative data analysis. Thus, the high-time resolution tungsten spectra have been successfully observed with good spectral resolution using the present EUV spectrometer system. Typical tungsten spectra in the EUV wavelength range observed from EAST discharges are presented with absolute intensity and spectral identification.
Review of Scientific Instruments | 2014
J. Huang; W.W. Heidbrink; Bo Wan; M. von Hellermann; Y. B. Zhu; W. Gao; C. R. Wu; Y. Y. Li; J. Fu; B. Lyu; Y. Yu; Y. J. Shi; M. Ye; L. Hu; C. Hu
To investigate the fast ion behavior, a fast ion D-alpha (FIDA) diagnostic system has been planned and is presently under development on Experimental Advanced Superconducting Tokamak. The greatest challenges for the design of a FIDA diagnostic are its extremely low intensity levels, which are usually significantly below the continuum radiation level and several orders of magnitude below the bulk-ion thermal charge-exchange feature. Moreover, an overlaying Motional Stark Effect (MSE) feature in exactly the same wavelength range can interfere. The simulation of spectra code is used here to guide the design and evaluate the diagnostic performance. The details for the parameters of design and hardware are presented.
Review of Scientific Instruments | 2017
Hongmin Mao; Fang Ding; Guang-Nan Luo; Zhenhua Hu; Xiahua Chen; Feng Xu; Zhongshi Yang; Jingbo Chen; Liang Wang; R Ding; Ling Zhang; Wei Gao; Jichan Xu; C. R. Wu
To facilitate long-pulse high power operation, an ITER-like actively cooled tungsten (W) divertor was installed in Experimental Advanced Superconducting Tokamak (EAST) to replace the original upper graphite divertor in 2014. A dedicated multichannel visible spectroscopic diagnostic system has been accordingly developed for the characterization of the plasma and impurities in the W divertor. An array of 22 lines-of-sight (LOSs) provides a profile measurement of the light emitted from the plasma along upper outer divertor, and the other 17 vertical LOSs view the upper inner divertor, achieving a 13 mm poloidal resolution in both regions. The light emitted from the plasma is collected by a specially designed optical lens assembly and then transferred to a Czerny-Turner spectrometer via 40 m quartz fibers. At the end, the spectra dispersed by the spectrometer are recorded with an Electron-Multiplying Charge Coupled Device (EMCCD). The optical throughput and quantum efficiency of the system are optimized in the wavelength range 350-700 nm. The spectral resolution/coverage can be adjusted from 0.01 nm/3 nm to 0.41 nm/140 nm by switching the grating with suitable groove density. The frame rate depends on the setting of LOS number in EMCCD and can reach nearly 2 kHz for single LOS detection. The light collected by the front optical lens can also be divided and partly transferred to a photomultiplier tube array with specified bandpass filter, which can provide faster sampling rates by up to 200 kHz. The spectroscopic diagnostic is routinely operated in EAST discharges with absolute optical calibrations applied before and after each campaign, monitoring photon fluxes from impurities and H recycling in the upper divertor. This paper presents the technical details of the diagnostic and typical measurements during EAST discharges.
Review of Scientific Instruments | 2016
Jia-Qi Huang; W.W. Heidbrink; M. von Hellermann; L. Stagner; C. R. Wu; Y. M. Hou; J. F. Chang; S. Ding; Yue Chen; Y. B. Zhu; Z. Jin; Z. Xu; Wen Gao; J. F. Wang; B. Lyu; Qing Zang; G Q Zhong; L. Q. Hu; B. N. Wan; East Team
To investigate the fast ion behavior, a fast ion D-alpha (FIDA) diagnostic system has been installed on EAST. Fast ion features can be inferred from the Doppler shifted spectrum of Balmer-alpha light from energetic hydrogenic atoms. This paper will focus on the validation of FIDA measurements performed using MHD-quiescent discharges in 2015 campaign. Two codes have been applied to calculate the Dα spectrum: one is a Monte Carlo code, Fortran 90 version FIDASIM, and the other is an analytical code, Simulation of Spectra (SOS). The predicted SOS fast-ion spectrum agrees well with the measurement; however, the level of fast-ion part from FIDASIM is lower. The discrepancy is possibly due to the difference between FIDASIM and SOS velocity distribution function. The details will be presented in the paper to primarily address comparisons of predicted and observed spectrum shapes/amplitudes.
Plasma Physics and Controlled Fusion | 2014
Jia-Qi Huang; Y. Feng; B. N. Wan; S. Liu; J. F. Chang; H. Q. Wang; Wen Gao; L. Zhang; Y. Chen; Zhiwei Wu; C. R. Wu; East Team
The 3D edge Monte Carlo code coupled with EIRENE (EMC3-EIRENE) has been implemented on the Experimental Advanced Superconducting Tokamak (EAST) and, for the first time, applied to an axisymmetric double null divertor plasma. The code results are compared with Langmuir probe measurements. The cross-field transport coefficients for particle and energy, D⊥ and χ⊥, are determined by fitting the electron density and temperature profiles measured by a reciprocating probe on the outboard midplane. Good agreement between the simulation and probe profiles is obtained when D⊥ and χ⊥ are set to be 0.4 m2 s−1 and 2 m2 s−1, respectively. However, considerable discrepancies in density and temperature profiles are observed downstream. A parameter sensitivity study is carried out to identify the possible causes. Analyzing the numerical results in comparison with the measurements leads to the conclusion that the real separatrix at the outer midplane tends to be located ~7 mm inward with respect to the last closed flux surface obtained from the equilibrium fitting code.
Review of Scientific Instruments | 2016
Y. M. Hou; C. R. Wu; Jia-Qi Huang; W.W. Heidbrink; M. von Hellermann; Z. Xu; Z. Jin; J. F. Chang; Y. B. Zhu; Wen Gao; Yue Chen; B. Lyu; R. J. Hu; Pengfei Zhang; L. Zhang; Zhiwei Wu; Yaowei Yu; Minyou Ye; East Team
In toroidal magnetic fusion devices, fast-ion D-alpha diagnostic (FIDA) is a powerful method to study the fast-ion feature. The fast-ion characteristics can be inferred from the Doppler shifted spectrum of Dα light according to charge exchange recombination process between fast ions and probe beam. Since conceptual design presented in the last HTPD conference, significant progress has been made to apply FIDA systems on the Experimental Advanced Superconducting Tokamak (EAST). Both co-current and counter-current neutral beam injectors are available, and each can deliver 2-4 MW beam power with 50-80 keV beam energy. Presently, two sets of high throughput spectrometer systems have been installed on EAST, allowing to capture passing and trapped fast-ion characteristics simultaneously, using Kaiser HoloSpec transmission grating spectrometer and Bunkoukeiki FLP-200 volume phase holographic spectrometer coupled with Princeton Instruments ProEM 1024B eXcelon and Andor DU-888 iXon3 1024 CCD camera, respectively. This paper will present the details of the hardware descriptions and experimental spectrum.
Review of Scientific Instruments | 2016
Z. Xu; Zege Wu; Wei Gao; Yingjie Chen; C. R. Wu; L. Y. Zhang; J. Huang; Jiang Chang; X. J. Yao; Ping Zhang; Z. Jin; Y. M. Hou; H. Y. Guo
A filterscope diagnostic system has been mounted to observe the line emission and visible bremsstrahlung emission from plasma on the experimental advanced superconducting tokamak during the 2014 campaign. By this diagnostic system, multiple wavelengths including Dα (656.1 nm), Dγ (433.9 nm), He ii (468.5 nm), Li i (670.8 nm), Li ii (548.3 nm), C iii (465.0 nm), O ii (441.5 nm), Mo i (386.4 nm), W i (400.9 nm), and visible bremsstrahlung radiation (538.0 nm) are monitored with corresponding wavelength filters. All these multi-channel signals are digitized at up to 200 kHz simultaneously. This diagnostic plays a crucial role in studying edge localized modes and H-mode plasmas, due to the high temporal resolution and spatial resolution that have been designed into it.
Review of Scientific Instruments | 2016
C. R. Wu; Jia-Qi Huang; Wen Gao; Z. Xu; J. F. Chang; Y. M. Hou; Z. Jin; J. C. Xu; Yixiang Duan; Pengfei Zhang; Yue Chen; L. Zhang; Zhiwei Wu; J.G. Li; East Team
Volume recombination plays an important role towards plasma detachment for magnetically confined fusion devices. High quantum number states of the Balmer series of deuterium are used to study recombination. On EAST (Experimental Advanced Superconducting Tokamak), two visible spectroscopic measurements are applied for the upper/lower divertor with 13 channels, respectively. Both systems are coupled with Princeton Instruments ProEM EMCCD 1024B camera: one is equipped on an Acton SP2750 spectrometer, which has a high spectral resolution ∼0.0049 nm with 2400 gr/mm grating to measure the Dα(Hα) spectral line and with 1200 gr/mm grating to measure deuterium molecular Fulcher band emissions and another is equipped on IsoPlane SCT320 using 600 gr/mm to measure high-n Balmer series emission lines, allowing us to study volume recombination on EAST and to obtain the related line averaged plasma parameters (Te, ne) during EAST detached phases. This paper will present the details of the measurements and the characteristics of deuterium Balmer series line emissions during density ramp-up L-mode USN plasma on EAST.
Review of Scientific Instruments | 2016
J. F. Chang; M. Isobe; Kunihiro Ogawa; Jia-Qi Huang; C. R. Wu; Z. Xu; Z. Jin; S. Y. Lin; L. Q. Hu; East Team
A new scintillator-based fast ion loss detector (FILD) has been installed on Experimental Advanced Superconducting Tokamak (EAST) to investigate the fast ion loss behavior in high performance plasma with neutral beam injection (NBI) and ion cyclotron resonance heating (ICRH). A two dimensional 40 mm × 40 mm scintillator-coated (ZnS:Ag) stainless plate is mounted in the front of the detector, capturing the escaping fast ions. Photons from the scintillator plate are imaged with a Phantom V2010 CCD camera. The lost fast ions can be measured with the pitch angle from 60° to 120° and the gyroradius from 10 mm to 180 mm. This paper will describe the details of FILD diagnostic on EAST and describe preliminary measurements during NBI and ICRH heating.
Review of Scientific Instruments | 2018
C. R. Wu; Jia-Qi Huang; Jiang Chang; J. Zhang; R. J. Zhou; Z. Xu; Wen Gao; M. Isobe; Kunihiro Ogawa; S. Y. Lin; L. Q. Hu; J.G. Li; East Team
The scintillator-based detector for fast-ion loss measurements has been installed on EAST. To obtain high temporal resolution for fast-ion loss diagnostics, fast photomultiplier tube systems have been developed which can supply the complementary measurements to the previous image system with good energy and pitch resolution by using a CCD camera. By applying the rotatable platform, the prompt losses of beam-ions can be measured in normal and reverse magnetic field. The thick-target bremsstrahlung occurring in the stainless steel shield with energetic electrons can produce X-rays, which will strike on the scintillator based detector. To understand this interference on fast-ion loss signals, the effects of energetic electrons on the scintillator-based detector are studied, including runaway electrons in the plasma ramping-up phase and fast electrons accelerated by the lower hybrid wave.