Published 1975 | Version v1
Report

Higher-order relationship between eigen-value separation and static flux tilts

Description

Spatial kinetics phenomena in nuclear reactors, such as xenon-induced spatial flux oscillations, are currently being analyzed using the higher harmonic solutions to the static reactor balance equation. An important parameter in such an analysis is a global quantity called eigenvalue separation. It is desirable to be able to experimentally measure this parameter in power reactors in order to confirm design calculations. Since spatial distortions in the flux shape depend on the eigenvalue separation of the reactor, an attempt has been made previously to use this fact as a means of measuring the parameter. It was postulated that an induced flux distortion or ''static flux tilt'' could be measured and theoretically related to eigenvalue separation. Unfortunately, the behavior of experimental data did not exactly agree with theoretical predictions, and values of the parameter found using the original static flux tilt technique were consistently low. The theory has been re-evaluated here and the previously observed discrepancy eliminated. Techniques have been also developed to allow for more accurate interpretation of experimental data. In order to make the method applicable to real systems, the theory has been extended to two spatial dimensions; extension to three dimensions follows directly. Possible trouble areas have been investigated, and experimental procedures for use of the technique to measure the eigenvalue separation in power reactors are presented

Additional details

Publishing Information

Imprint Pagination
187 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
7256029
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Resource subtype / Literary indicator
Thesis, Non-conventional Literature
Descriptors DEI
EIGENVALUES; NEUTRON FLUX; OSCILLATIONS; POWER REACTORS; REACTOR KINETICS; SPATIAL DISTRIBUTION; TWO-DIMENSIONAL CALCULATIONS; XENON
Descriptors DEC
DISTRIBUTION; ELEMENTS; KINETICS; NONMETALS; RADIATION FLUX; RARE GASES; REACTORS

Optional Information

Notes
University Microfilms Order No. 75-22,122.