DocumentCode :
1145113
Title :
Numerical study on performance of disk MHD generator using frozen inert gas plasma
Author :
Kobayashi, Hiromichi ; Satou, Yukimasa ; Okuno, Yoshihiro
Author_Institution :
Dept. of Phys., Keio Univ., Yokohama, Japan
Volume :
30
Issue :
6
fYear :
2002
fDate :
12/1/2002 12:00:00 AM
Firstpage :
2152
Lastpage :
2159
Abstract :
In an magnetohydrodynamic (MHD) generator using a frozen inert gas plasma (FIP), the availability of a frozen argon plasma, the influence of plasma uniformity at the generator inlet on the performance, and the feasibility of a large-scale generator are numerically examined by γ-θ two-dimensional simulation. The FIP is produced by pre-ionizing inert gas without an alkali metal seed at the generator inlet, then the ionization degree of the plasma is kept almost constant in the whole of the channel because of considerable slow recombination of the inert gas just like frozen reaction plasma. It is found that not only helium, but also argon frozen plasma MHD generation is realized, although highly accurate control of inlet ionization degree is necessary for argon. It is important to reduce the nonuniformity of plasma properties at the generator inlet in order to raise the maximum enthalpy extraction ratio. Even for the large-scale generator with 1000-MW thermal input, the ionization degree is kept almost constant in the whole of the channel and the high performance is obtainable. This result is extremely attractive for the FIP MHD generator.
Keywords :
inert gases; ion recombination; magnetohydrodynamic convertors; plasma collision processes; plasma simulation; γ-&thetas; two-dimensional simulation; Ar; disk MHD generator; frozen argon plasma; frozen inert gas plasma; frozen reaction plasma; generator inlet; inlet ionization; ionization degree; large-scale generator; magnetohydrodynamic generator; maximum enthalpy extraction ratio; nonequilibrium plasma; nonuniformity; plasma properties; plasma uniformity; pre-ionisation; slow recombination; two-dimensional numerical simulation; Argon; Electrons; Helium; Ionization; Magnetohydrodynamic power generation; Plasma materials processing; Plasma properties; Plasma simulation; Plasma temperature; Power generation;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2002.806616
Filename :
1178839
Link To Document :
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