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- W48497145 abstract "A parametric study is presented for the linear, two-component, mirror fusion system in which the interrelationship of the important system parameters is displayed. The distribution function of the high-energy component and related functions are calculated from the Fokker-Planck equation. The functions are conveniently parametrized by the ratio of injection energy to the target electron temperature. The Q-values for the two-component system are found to be increasing functions of the injection energy up to 200 keV and then to exhibit a broad maximum from 200 to 600 keV. The optimum Q values are significantly greater (greater than 2) than for the conventional mirror system. System lengths are derived as a function of the magnetic field, target electron temperature, plasma potential, and $alpha$-particle heating. For a given Q (or injection energy/electron temperature ratio) the system lengths, which may be long, are balanced against magnetic-field values, which may be large. Effective bounds on several parameters are established. The presence of $alpha$-particles in the system may result in the development of a deuterium ''halo'' surrounding the target plasma, which can severely attenuate the incident beam. Accommodation of these ''halo'' effects necessitates a longer system. (auth)" @default.
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- W48497145 date "1974-09-27" @default.
- W48497145 modified "2023-09-27" @default.
- W48497145 title "Parametric survey for the linear two-component system" @default.
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