Neutronics shielding analysis for the end plug of a tandem mirror fusion reactor

A neutronics analysis using the Monte Carlo method is carried out for the end-plug penetration and magnet system of a tandem mirror fusion reactor. Detailed penetration and the magnets' three-dimensional configurations are modeled. A method of position dependent angular source biasing is develo...

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Veröffentlicht in:J. Fusion Energy; (United States) 1981-10, Vol.1 (4), p.367-380
Hauptverfasser: Ragheb, Magdi M. H., Maynard, Charles W.
Format: Artikel
Sprache:eng
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Zusammenfassung:A neutronics analysis using the Monte Carlo method is carried out for the end-plug penetration and magnet system of a tandem mirror fusion reactor. Detailed penetration and the magnets' three-dimensional configurations are modeled. A method of position dependent angular source biasing is developed to adequately sample the DT fusion source inthe central cell region and obtain flux contributions at the penetration components. To assure cryogenic stability, the barrier cylindrical solenoid is identified asneeding substantial shielding of about 1 m of a steel-lead-boron-carbide-water mixture. Heating rates there would require a thermal-hydraulic design similar to that in the central cell blanket region. The transition coils, however, need a minimal 0.2 m thickness shield. The leakage neutron flux at the direct converters is estimated at 1.3x10/sup 15/ n/(m /SUP 2./ s), two orders of magnitude lower than that reported at the neutral beam injectors for tokamaks around 10/sup 17/ n/(m /SUP 2./ s) for a 1 MW/m/sup 2/ 14 MeV neutron wall loading. This result is obtained through a coupling between the nuclear and plasma physics designs in which hydrogen ions rather than deuterium atoms are used for energy injection at the end plug, to avoid creatinga neutron source there. This lower and controllable radiation leakage problem is perceivedas a potential major advantage of tandem mirrors compared to tokamaks and laser reactor systems.
ISSN:0164-0313
1572-9591
DOI:10.1007/BF01050302