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ICRF Heated Long-Pulse Plasma Discharges in LHD 被引量:4
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作者 R. KUmAZAWA T. SEKI +54 位作者 T. mUTOH K. SAITO T. WATARI Y. NAKAmURA m. SAKAmOTO T. WATANABE S. KUBO T. SHImOZUmA Y. YOSHImURA H. IGAmI Y. TAKEIRI Y. OKA K. TSUmORI m. OSAKABE K. IKEDA K. NAGAOKA O. KANEKO J. mIYAZAWA S. mORITA K. NARIHARA m. SHOJI S. mASUZAKI m. goto T. mORISAKI B. J. PETERSON K. SATO T. TOKUZAWA N. ASHIKAWA K. NISHImURA H. FUNABA H. CHIKARAISHI T. NOTAKE Y. TORII H. OKADA m. ICHImURA H. HIGAKI Y. TAKASE H. KASAHARA F. SHImPO G.NOmURA C.TAKAHASHI m.YOKOTA A. KATO 赵燕平 J. S. YOON J. G. KWAK H. YAmADA K. KAWAHATA N. OHYABU K. IDA Y. NAGAYAmA N. NODA A. KOmORI S. SUDO O. mOTOJImA 《Plasma Science and Technology》 SCIE EI CAS CSCD 2006年第1期28-32,共5页
A long-pulse plasma discharge for more than 30 min.was achieved on the LargeHelical Device(LHD).A plasma of n_e=0.8×10^(19)m^(-3)and T_(iO)=2.0 keV was sustained withP_(ICH)=0.52 MW,P_(ECH)=0.1 MW and averaged P_... A long-pulse plasma discharge for more than 30 min.was achieved on the LargeHelical Device(LHD).A plasma of n_e=0.8×10^(19)m^(-3)and T_(iO)=2.0 keV was sustained withP_(ICH)=0.52 MW,P_(ECH)=0.1 MW and averaged P_(NBI)=0.067 MW.Total injected heatingenergy was 1.3 GJ,which was a quarter of the prepared RF heating energy.One of the keys to thesuccess of the experiment was a dispersion of the local plasma heat load to divertors,accomplishedby shifting the magnetic axis inward and outward. 展开更多
关键词 长脉冲等离子体放电 LHD ICRF加热 螺旋/仿星器构造 稳定态操作
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Formation of Edge Transport Barriers by L-H Transition and Large Reversed Plasma Current on LHD
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作者 K. TOI S. OHDACHI +14 位作者 F. WATANABE K. NARIHARA T. mORISAKI 高翔 m. goto K. IDA S. mASUZAKI K. mIYAZAWA S. mOR.ITA S. SAKAKIBARA K. TANAKA T. TOKUZAWA K.W. WATANABE 严龙文 m. YOSHINUmA 《Plasma Science and Technology》 SCIE EI CAS CSCD 2006年第1期5-9,共5页
On the Large Helical Device (LHD) where nested magnetic surfaces are surrounded by the ergodic field layer, edge transport barrier (ETB) was produced in neutral-beam-injection (NBI) heated plasmas through transi... On the Large Helical Device (LHD) where nested magnetic surfaces are surrounded by the ergodic field layer, edge transport barrier (ETB) was produced in neutral-beam-injection (NBI) heated plasmas through transition and non-transition processes. The former case is the ETB formation by L-Htransition, where characteristics of L-H transition observed in a tokamak plasma are clearly recognized. The confinement improvement is the modest (- 10%), compared with the ISS95 international stellarator scaling. The threshold power for the transition is comparable or slightly lower than the ITER scaling law established by tokamaks and compact tori. The ETB is formed inside the ergodic field layer of the vacuum field. The ETB formation destabilizes edge coherent modes such as m/n = 1/1, 2/3 and 1/2, of which rational surfaces are in the magnetic hill. The formed ETB is partially and transiently destroyed by these coherent edge MHD modes and edge localized modes (ELMs) typically observed in Ha signals. The latter ETB is observed in a plasma with large reversed NBI-driven current more than 100 kA at Bt = 1 T. In these plasmas, the edge magnetic shear is enhanced by the current and the rotational transform in the core region is expected to be appreciably reduced. Thus reduced rotational transform in the plasma central region will enhance outward heat and particle fluxes toward ergodic edge layer. The ETB with steep electron temperature gradient up to - 5 keV/m is formed by blocking enhanced outward heat flux. 展开更多
关键词 edge transport barrier ergodic field layer L-H transition ELMS edge MHD modes
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