Dynamic reactor modeling with applications to SPR and ZEDNA
Author(s) -
Ahti Suo-Anttila
Publication year - 2011
Publication title -
osti oai (u.s. department of energy office of scientific and technical information)
Language(s) - English
Resource type - Reports
DOI - 10.2172/1177062
Subject(s) - nuclear engineering , monte carlo method , range (aeronautics) , neutron , population , power (physics) , pulse (music) , delayed neutron , mechanics , statistical physics , physics , computer science , nuclear physics , materials science , engineering , neutron temperature , mathematics , thermodynamics , statistics , optics , demography , sociology , detector , composite material
A dynamic reactor model has been developed for pulse-type reactor applications. The model predicts reactor power, axial and radial fuel expansion, prompt and delayed neutron population, and prompt and delayed gamma population. All model predictions are made as a function of time. The model includes the reactivity effect of fuel expansion on a dynamic timescale as a feedback mechanism for reactor power. All inputs to the model are calculated from first principles, either directly by solving systems of equations, or indirectly from Monte Carlo NParticle Transport Code (MCNP) derived results. The model does not include any empirical parameters that can be adjusted to match experimental data. Comparisons of model predictions to actual Sandia Pulse Reactor SPR-III pulses show very good agreement for a full range of pulse magnitudes. The model is also applied to Z-pinch externally driven neutron assembly (ZEDNA) type reactor designs to model both normal and off-normal ZEDNA operations.
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