J. Rao
Princeton University
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Featured researches published by J. Rao.
Nuclear Fusion | 2012
Weiwen Xiao; P. H. Diamond; X.L. Zou; J.Q. Dong; X.T. Ding; L. H. Yao; B.B. Feng; Chengyuan Chen; W. L. Zhong; M. Xu; Baoshan Yuan; T. Rhee; J.M. Kwon; Z. B. Shi; J. Rao; G.J. Lei; J.Y. Cao; J. Zhou; M. Huang; D.L. Yu; Y. Huang; K.J. Zhao; Z.Y. Cui; X.M. Song; Y.D. Gao; Yipo Zhang; J. Cheng; X.Y. Han; Y. Zhou; Y.B. Dong
Density profiles in the pedestal region (H-mode) are measured in HL-2A and the characteristics of the density pedestal are described. Cold particle deposition by supersonic molecular beam injection (SMBI) within the pedestal is verified. Edge-localized mode (ELM) mitigation by SMBI into the H-mode pedestal is demonstrated and the relevant physics is elucidated. The sensitivity of the effect to SMBI pressure and duration is studied. Following SMBI, the ELM frequency increases and the ELM amplitude decreases for a finite duration. Increases in ELM frequency of are achieved. This experiment argues that the ELM mitigation results from an increase in higher frequency fluctuations and transport events in the pedestal, which are caused by SMBI. These inhibit the occurrence of large transport events which span the entire pedestal width. The observed change in the density pedestal profiles and edge particle flux spectrum with and without SMBI supports this interpretation. An analysis of the experiment and a model shows that ELMs can be mitigated by SMBI with shallow particle penetration into the pedestal.
Nuclear Fusion | 2010
Xuru Duan; J.Q. Dong; L.W. Yan; X.T. Ding; Q. W. Yang; J. Rao; D. Q. Liu; W. M. Xuan; L. Chen; X. D. Li; G.J. Lei; J.Y. Cao; Zizheng Cao; X.M. Song; Y. Huang; Yi Liu; W. C. Mao; Q. M. Wang; Z.Y. Cui; X.Q. Ji; B. Li; G. S. Li; H. J. Li; C. W. Luo; Yong-Dong Wang; L. H. Yao; L. Y. Yao; Jian Zhang; J. Zhou; Y. Zhou
Typical ELMy H-mode discharges have been achieved on the HL-2A tokamak with combined auxiliary heating of NBI and ECRH. The minimum power required is about 1.1 MW at a density of 1.6 × 1019 m−3 and increases with a decrease in density, almost independent of the launching order of the ECRH and NBI heating. The energy loss by each edge localized mode (ELM) burst is estimated to be lower than 3% of the total stored energy. At a frequency of typically 400 Hz, the energy confinement time is only marginally reduced by the ELMs. The supersonic molecular beam injection fuelling is found to be beneficial for triggering an L–H transition due to less induced recycling and higher fuelling efficiency. The dwell time of the L–H transition is 20–200 ms, and tends to decrease as the power increases. The delay time of the H–L transition is 10–30 ms for most discharges and is comparable to the energy confinement time. The ELMs with a period of 1–3 ms are sustained for more than ten times the energy confinement time with enhanced confinement factor H89 > 1.5, which tends to decrease with the total heating power. The confinement time in the H-mode discharges increases with plasma current approximately linearly.
Nuclear Fusion | 2002
X.T. Ding; Yi. Liu; Gancheng Guo; Enyao Wang; K.L. Wong; L.W. Yan; Jiafu Dong; J.Y. Cao; Y. Zhou; J. Rao; Y. Yuan; Hua Xia; Yong Liu
Strong m = 1 MHD activities are observed in the HL-1M tokamak during off-axis electron cyclotron resonance heating (ECRH) when the cyclotron resonance location is placed just outside the q = 1 surface at the high-magnetic-field side of the magnetic surface. Addition of lower-hybrid waves to ECRH significantly enhances the MHD excitation, but lower-hybrid waves alone cannot excite or sustain the mode. This result is a clear demonstration of the suprathermal trapped electron effect on the instability because of the absence of energetic ions in the plasma.
Nuclear Fusion | 2013
X.T. Ding; Wei Chen; L.M. Yu; S.Y. Chen; J.Q. Dong; X.Q. Ji; Z. B. Shi; Y. Zhou; Y.B. Dong; Xianli Huang; J.X. Li; Yipo Zhang; X.Y. Song; X.M. Song; J. Zhou; J. Rao; J.Y. Cao; M. Huang; B.B. Feng; Z.Y. Cui; Y. Huang; Yi Liu; L.W. Yan; Q. W. Yang; X.R. Duan; Y. Liu
In this paper, an overview of the magnetohydrodynamic instabilities induced by energetic electrons on HL-2A is given and some new phenomena with high-power electron cyclotron resonance heating (ECRH) are presented. A toroidal Alfven eigenmode with frequency from 200 to 350 kHz is identified during powerful ECRH. In the lower frequency range from 10 to 35 kHz, which is in the beta-induced Alfven eigenmode frequency range, the coexistence of multi-mode is found during the high-power ECRH for the first time. The spectra become wide when the power is sufficiently high. The frequencies of the modes increase with and are much lower than the Alfven frequency. The relationship between the mode frequency and (7/4 + Te/Ti)1/2 (Ti)1/2 can be obtained by statistical data analysis. Between the two previous frequency ranges, a group of new modes with frequencies from 50 to 180 kHz is observed with high-power ECRH and neutral beam injection heating together. The modes have clear frequency chirping within several milliseconds or several tens of milliseconds, which are identified as energetic particle mode like instabilities. The new features of the fishbone instability excited by energetic electrons are identified. It is interesting to find the frequency jump phenomena in the high-power ECRH. The difference between the low and high frequencies increases with ECRH power. The frequency jumps between 8 and 15 kHz within about 25 ms periodically, when the power is 1.2 MW.
IEEE Transactions on Plasma Science | 2012
X. R. Duan; Y. Huang; D. Q. Liu; W. M. Xuan; L. Chen; J. Rao; X. M. Song; Zizheng Cao; B. Li; J.Y. Cao; G.J. Lei; X. D. Li; Yi Liu; Q. W. Yang; L. Y. Yao; X. T. Ding; J. Q. Dong; L. W. Yan; C. H. Pan; Yong Liu
The operation conditions have been improved via developing new technologies and improving the hardware on HL-2A tokamak in recent years. The ECRH system has been upgraded to 3 MW/68 GHz, the supersonic molecular beam injection (SMBI) fuelling technique has been developed further, and clusters can be formed in the SMB by cooling the gas to around liquid nitrogen temperature, so that deeper penetration can be achieved. Moreover, there are about 30 kinds of diagnostics developed on HL-2A to measure the plasma parameters. These diagnostic systems include magnetics, microwave reflectometry, charge exchange recombination spectroscopy, Thomson scattering, FIR interferometer. Some of them were specially designed for the physics experiments. For example, a novel design of Langmuir probes was developed to study the 3-D structure of zonal flows. With these hardware development and improvement, new experimental results have been achieved in the fields of turbulence, transport, MHD instabilities, and energetic particle dynamics. In particular, the edge localized mode (ELM)y H-mode has been achieved by combining the auxiliary heating of NBI and ECRH, SMBI is beneficial for the L-H transition and the H-mode operation on HL-2A, and suitable for studying particle transport and controlling the ELMs during H-mode discharges due to its deep and local injection features and good controllability. In addition, the 3-D spectral structures of the low-frequency zonal flow and quasi-mode, which were predicted by theory and simulation, have been observed simultaneously. The beta-induced Alfvén eigenmodes (BAEs), excited by large magnetic islands (m-BAE) and by energetic electrons (e-BAE), are investigated, these phenomena are under further study.
Nuclear Fusion | 2013
W. L. Zhong; X.L. Zou; X.R. Duan; X.T. Ding; J.Q. Dong; Z. B. Shi; X.M. Song; Weiwen Xiao; Fan Xia; Xianli Huang; Y.B. Dong; Z. T. Liu; X.Q. Ji; J. Cheng; Y. Zhou; Wei Chen; D.L. Yu; X.Y. Han; Z.Y. Cui; Yipo Zhang; Y. Xu; J.X. Li; G.J. Lei; J.Y. Cao; J. Rao; J. Zhou; M. Huang; Y. Huang; L. Chen; Yi Liu
For the first time, edge-localized mode (ELM)-free H-mode was realized in the HL-2A tokamak by using electron cyclotron resonance heating and co-current neutral beam injection (NBI) heating. This ELM-free H-mode is associated with the formation of edge particle transport barrier, an increase in density peaking and a significant decrease in edge turbulence. During the stationary ELM-free phase, an edge magnetohydrodynamic mode is identified, which has similar characteristics to an edge harmonic oscillation (EHO), as observed in other tokamaks. This EHO-like mode enhances edge particle transport, and propagates poloidally in the electron diamagnetic drift direction and toroidally in the same direction as the plasma current and NBI. A detailed analysis of this mode and the EHO–ELM transition is presented in this paper.
ieee/npss symposium on fusion engineering | 2011
X. R. Duan; Y. Huang; D. Q. Liu; W. M. Xuan; L. Chen; J. Rao; X.M. Song; Zizheng Cao; B. Li; J.Y. Cao; G.J. Lei; X. D. Li; Yi Liu; Q. W. Yang; L. Y. Yao; X.T. Ding; J.Q. Dong; L.W. Yan; C.H. Pan; Yong Liu
The operation conditions have been improved via developing new technologies and improving the hardware on HL-2A tokamak in recent years. The ECRH system has been upgraded to 3 MW/68 GHz, the supersonic molecular beam injection (SMBI) fuelling technique has been developed further, and clusters can be formed in the SMB by cooling the gas to around liquid nitrogen temperature, so that deeper penetration can be achieved. Besides, there are about 30 kinds of diagnostics developed on HL-2A to measure the plasma parameters. These diagnostic systems include magnetics, microwave reflectometry, CXRS, Thomson scattering, FIR interferometer etc. Some of them were specially designed for the physics experiments. For example, a novel design of Langmuir probes was developed to study the 3-D structure of zonal flows. With these hardware development and improvement, new experimental results have been achieved in the fields of turbulence, transport, MHD instabilities and energetic particle dynamics. In particular, the ELMy H-mode has been achieved by combining the auxiliary heating of NBI and ECRH, SMBI is beneficial for the L-H transition and the H-mode operation on HL-2A, and suitable for studying particle transport and controlling the ELMs during H-mode discharges due to its deep and local injection features and good controllability. Besides, the three dimensional spectral structures of the low frequency zonal flow and quasi-mode, which were predicted by theory and simulation, have been observed simultaneously. The beta-induced Alfvén eigenmodes (BAEs), excited by large magnetic islands (m-BAE) and by energetic electrons (e-BAE), are investigated, these phenomena are under further study.
PLASMA AND FUSION SCIENCE: 17th IAEA Technical Meeting on Research Using Small Fusion Devices | 2008
Y. B. Dong; Yi Liu; Hongjuan Sun; Jun Zhou; Weiwen Xiao; W. Chen; Wei Deng; L. H. Yao; B. B. Feng; J. Rao; Q. W. Yang; X. T. Ding; Yong Liu; Chuan-Hong Pan
The recent experiment results during electron cyclotron resonance heating (ECRH) on HL‐2A tokamak are presented in this paper. During ECRH with a series of the supersonic molecular beam injection (SMBI) pulse fueling, the plasma storage energy WE, βp, line averaged density ne and “fusion neutron” count increase, leading to the plasma confinement improved. Furthermore, the non‐local transport phenomena induced by SMBI have been firstly observed in HL‐2A tokamak. The non‐local effect induced by SMBI in HL‐2A lasts much longer than that induced by pellet injection in other similar size tokamak; both the bolometer radiation and the Ha emission decrease when the non‐local effect appears. It indicates that an electron transport barrier has possibly been formed at the position just outside the q = 1 surface during this phase. In addition, the delayed core soft x‐ray intensity decrease has been observed after ECRH switch‐off, while the edge soft X‐ray intensity decreases just after the ECRH switch off. The study ...
Proceedings of the 16th Joint Workshop | 2011
Jun Zhou; J. Rao; Bo Li; Mei Huang; Zhihong Lu; Zihua Kang; He Wang Kun Feng; Mingwei Wang; Gangyu Chen; Yingnan Bu; Chao Wang; Bo Lu
Fusion Engineering and Design | 2013
D. H. Xia; Mei Huang; Shaodong Song; Gangyu Chen; Jieqiong Wang; Jun Zhou; J. Rao; G. Zhuang