Experimental analysis of self-organized structure and transport on the magnetospheric plasma device RT-1

التفاصيل البيبلوغرافية
العنوان: Experimental analysis of self-organized structure and transport on the magnetospheric plasma device RT-1
المؤلفون: Shotaro Katsura, John Howard, Takahiro Mori, K. Nakamura, Naoki Kenmochi, Zensho Yoshida, T. Sugata, Masaki Nishiura, K. Shirahata
المصدر: M. Nishiura et al 2019 Nucl. Fusion 59 096005
بيانات النشر: IOP Publishing, 2019.
سنة النشر: 2019
مصطلحات موضوعية: Nuclear and High Energy Physics, Magnetosphere, Field strength, 01 natural sciences, 010305 fluids & plasmas, symbols.namesake, advanced fusion, Physics::Plasma Physics, particle confinement, 0103 physical sciences, 010306 general physics, coherence imaging spectroscopy, Physics, Magnetic confinement fusion, Plasma, Condensed Matter Physics, dipole field, Dipole, Van Allen radiation belt, Physics::Space Physics, transport, symbols, magnetosphere, Atomic physics, Magnetic dipole, Ion cyclotron resonance
الوصف: Dipole plasma exhibits strong heterogeneities in field strength, density, temperature and other parameters, while maintaining a holistic balance. Our study of the internal structures reveals the fundamental self-organizing mechanisms operating in their simplest realization (as commonly observed in astronomical systems). Three new findings are reported from the RT-1 experiment. The creation of a high-energy electron core (similar to the radiation belts in planetary magnetospheres) is observed for the first time in a laboratory system. High-energy electrons (3–15 keV), produced by electron cyclotron heating, accumulate in a 'belt' located in the low-density region (high-beta value ~1 is obtained by increasing the high-energy component up to 70% of the total electrons). The dynamical process of the 'up-hill diffusion' (a spontaneous mechanism of creating density gradient) has been analyzed by perturbing the density by gas injection. The spontaneous density formation in the laboratory magnetosphere elucidates the self-organized plasma transport relevant to a planetary magnetosphere. The coherence-imaging spectroscopy visualized the two-dimensional profiles of ion temperature and flow velocity in the ion cyclotron resonance frequency heating. The ion temperature and flow were enhanced globally, and particularly along the magnetic field lines near the levitation magnet. These results advance our understanding of transport and self-organization not only in dipole plasmas, but in general magnetic confinement systems relevant to fusion plasmas.
اللغة: English
تدمد: 0029-5515
URL الوصول: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::dba9e09d1fa56a781d06e4be480a2dd9
http://hdl.handle.net/10655/00012778
حقوق: OPEN
رقم الأكسشن: edsair.doi.dedup.....dba9e09d1fa56a781d06e4be480a2dd9
قاعدة البيانات: OpenAIRE