Published 1986 | Version v1
Report

Thermal hydraulic and neutronic interaction in the rotating bed reactor

Description

Power transient characteristics in a rotating fluidized bed reactor (RBR) are investigated theoretically. A propellant flow perturbation is assumed to occur in an initially equilibrium state of the core. Transfer functions representing quasi-one-dimensional mutual feedback between thermal hydraulics and neutronics are developed and analyzed in the frequency domain. Neutronic responses are determined by Fermi-age theory for slowing down of fast neutrons and diffusion theory for thermal neutron distribution. Neutron leakage through the exhaust nozzle is accounted for by applying diffuse view factors similar to those applied in radiative heat transfer. The bed expansion behavior is described by a kinematic wave equation derived from the continuity of the gas phase. The drift flux approach is used to determine the yield fractions in the equilibrium bed. Thermal responses of fuel are evaluated by dividing it into several volume-averaged zones to better account for the transient effects over single zone models. Sample calculations are undertaken for the various operation conditions and design parameters of the RBR based on 250 MW/sub t/, 1000 MW/sub t/, and 5000 MW/sub t/ power reactors. The results show that power transients are dependent on the parametric changes of optical thickness and view factors

Availability note (English)

University Microfilms Order No. 86-19,987.

Additional details

Publishing Information

Imprint Pagination
304 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
18042391
Subject category
S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
Resource subtype / Literary indicator
Thesis, Non-conventional Literature
Descriptors DEI
ATWS; FAST NEUTRONS; FERMI AGE THEORY; FLUIDIZED BED REACTORS; HYDRAULICS; NEUTRON DIFFUSION EQUATION; SLOWING-DOWN; THERMAL NEUTRONS; TRANSFER FUNCTIONS
Descriptors DEC
ACCIDENTS; BARYONS; DESIGN BASIS ACCIDENTS; ELEMENTARY PARTICLES; FERMIONS; FUEL DISPERSION REACTORS; FUNCTIONS; HADRONS; HOMOGENEOUS REACTORS; NEUTRON SLOWING-DOWN THEORY; NEUTRONS; NUCLEONS; REACTOR ACCIDENTS; REACTORS