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Study on the physical basis of pressure and particle velocity combine processing 被引量:1
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作者 HUI Junying, LIU Hong, YU Huabing, FAN Minyi, LIANG Guolong (Underwater Acoustic Engineering Dept., Harbin Engineering University Harbin 150001) 《Chinese Journal of Acoustics》 2001年第3期203-212,共10页
Some basic studies of pressure and particle velocity combine processing such as correlation between them, average acoustic intensity processing, rotating and sharpening of directivity are described. Preliminary result... Some basic studies of pressure and particle velocity combine processing such as correlation between them, average acoustic intensity processing, rotating and sharpening of directivity are described. Preliminary results based on theoretical analysis and lake trail will lay a foundation for further research. 展开更多
关键词 Study on the physical basis of pressure and particle velocity combine processing
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JET and the Physics Basis of ITER
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作者 Martin Keilhacker 《Plasma Science and Technology》 SCIE EI CAS CSCD 2004年第1期2109-2122,共14页
JET has made unique contributions to the physics basis of ITER by virtue ofits ITER-like geometry, large plasma size and D-T capability. The paper discusses recent JET resultsand their implications for ITER in the are... JET has made unique contributions to the physics basis of ITER by virtue ofits ITER-like geometry, large plasma size and D-T capability. The paper discusses recent JET resultsand their implications for ITER in the areas of standard ELMy H-mode, D-T operation and advancedtokamak modes. In ELMy H-mode the separation of plasma energy into core and pedestal contributionsshows that core confinement scales like gyroBohm transport. High triangularity has a beneficialeffect on confinement and leads to an integrated plasma performance exceeding the ITER Q =10reference case. A revised type I ELM scaling predicts acceptable ELM energy losses for ITER, whileprogress in physics understanding of NTMs shows how to control them in ITER. The D-T experiments of1997 have validated ICRF scenarios for heating ITER/a reactor and identified ion minority schemes(e.g. (~3He)DT) with strong ion heating. They also show that the slowing down of alpha particles isclassical so that the self-heating by fusion alphas should cause no unexpected problems. With thePellet Enhanced Performance mode of 1988, JET has produced the first advanced tokamak mode, withpeaked pressure profiles sustained by reversed magnetic shear and strongly reduced transport. Morerecently, LHCD has provided easy tuning of reversed shear and reliable access to ITBs. Improvedphysics understanding shows that rational g-surfaces play a key role in the formation anddevelopment of ITBs. The demonstration of real time feedback control of plasma current and pressureprofiles opens the path towards fully controlled steady-state tokamak plasmas. 展开更多
关键词 fusion experiment JET high confinement regime ELMy H-mode advanced tokamakscenario D-T experiments physics basis of ITER
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Radiation Temperature Scaling Law for Gold Hohlraum Heated with Lasers at 0.35 mm Wavelength 被引量:4
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作者 江少恩 孙可煦 +3 位作者 丁永坤 黄天晅 崔延莉 陈久森 《Chinese Physics Letters》 SCIE CAS CSCD 2005年第9期2328-2331,共4页
We have carried out the hohlraum experiments about radiation temperature scaling on the Shenguang-Ⅱ (SG- Ⅱ) laser facility with eight laser beams of 0.35#m, pulse duration of about 1.0ns and total energy of 2000J.... We have carried out the hohlraum experiments about radiation temperature scaling on the Shenguang-Ⅱ (SG- Ⅱ) laser facility with eight laser beams of 0.35#m, pulse duration of about 1.0ns and total energy of 2000J. The reradiated x-ray flux through the laser entrance hole was measured using a soft x-ray spectrometer. The measured peak radiation temperature was 170eV for the standard hohlraum and 150 eV for the 1.5-scaled one. We have derived the radiation temperature scaling law, in which the laser hohlraum coupling efficiency is included. With an appropriate coupling efficiency, the coincidences between experimental and scaling hohlraum radiation temperatures are rather good. 展开更多
关键词 INERTIAL CONFINEMENT FUSION INDIRECT-DRIVE TARGETS X-RAY CONFINEMENT COUPLING EFFICIENCY PHYSICS basis ENERGY-LOSS NOVA LASER FACILITY LIGHT IGNITION
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