DocumentCode :
227192
Title :
Numerical analysis of temperature distribution for isochoric heating with intense pulsed power discharge using electron beam diode based impedance controller
Author :
Hayashi, Ryohei ; Tamura, Fumihiro ; Kudo, Takahiro ; Takahashi, Koichi ; Sasaki, T. ; Kikuchi, Takashi ; Aso, Teruo ; Harada, Nobohiro ; Weihua Jiang ; Kashine, Kenji ; Tokuchi, Akira
Author_Institution :
Nagaoka Univ. of Technol., Nagaoka, Japan
fYear :
2014
fDate :
25-29 May 2014
Firstpage :
1
Lastpage :
1
Abstract :
Summary form only given. In inertial confinement fusion, understanding implosion dynamics of fuel pellet is a key issue to obtain effective nuclear fusion reactions. A foamed metal is considered as structural materials such as a pusher and a radiator. An energy driver as laser or heavy ion beam irradiates the fuel pellet, and the target material becomes dense plasma through warm dense matter (WDM) regime. Although, the properties in WDM should be clear to design the target pellet. In previous study, isochoric heating with pulsed power discharge was investigated to generate and to measure the WDM state.3,4 We studied the WDM generation with implosion time scale by isochoric heating with pulsed power discharge using intense pulsed power generator ETIGO-II.5 To control the input power into the sample, we proposed an electron beam diode based impedance controller.6 In this setup, the input current was changed to adjust the gap distance between the electrodes of electron beam diode. In this study, we estimate the temperature increase in the apparatus by the experimental data. The temperature distribution is calculated by thermal diffusion equation with the experimental data.
Keywords :
numerical analysis; plasma beam injection heating; plasma temperature; plasma transport processes; temperature distribution; thermal diffusion; dense plasma; effective nuclear fusion reactions; electron beam diode based impedance controller; electron beam diode electrodes; energy driver; fuel pellet; gap distance; heavy ion beam; implosion dynamics; implosion time scale; inertial confinement fusion; input current; input power; intense pulsed power discharge; intense pulsed power generator ETIGO-II; isochoric heating; laser beam; numerical analysis; pusher; radiator; structural materials; temperature distribution; thermal diffusion equation; warm dense matter regime; Discharges (electric); Educational institutions; Electron beams; Heating; Materials; Temperature distribution; Wavelength division multiplexing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Sciences (ICOPS) held with 2014 IEEE International Conference on High-Power Particle Beams (BEAMS), 2014 IEEE 41st International Conference on
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4799-2711-1
Type :
conf
DOI :
10.1109/PLASMA.2014.7012240
Filename :
7012240
Link To Document :
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