Published 1987 | Version v1
Miscellaneous

Time-dependent integral transport equation kernels, leakage rates and collision rates for plane and spherical geometry

Description

Time-dependent integral transport equation flux and current kernels for plane and spherical geometry are derived for homogeneous media. Using the multiple collision formalism, isotropic sources that are delta distributions in time are considered for four different problems. The plane geometry flux kernel is applied to a uniformly distributed source within an infinite medium and to a surface source in a semi-infinite medium. The spherical flux kernel is applied to a point source in an infinite medium and to a point source at the origin of a finite sphere. The time-dependent first-flight leakage rates corresponding to the existing steady state first-flight escape probabilities are computed by the Laplace transform technique assuming a delta distribution source in time. The case of a constant source emitting neutrons over a time interval, Δt, for a spatially uniform source is obtained for a slab and a sphere. Time-dependent first-flight leakage rates are also determined for the general two region spherical medium problem for isotropic sources with a delta distribution in time uniformly distributed throughout both the inner and outer regions. The time-dependent collision rates due to the uncollided neutrons are computed for a slab and a sphere using the time-dependent first-flight leakage rates and the time-dependent continuity equation. The case of a constant source emitting neutrons over a time interval, Δt, is also considered

Availability note (English)

University Microfilms, PO Box 1764, Ann Arbor, MI 48106, Order No.87-19,104.

Additional details

Publishing Information

Publisher
Univ. of Wisconsin.
Imprint Place
Madison, WI (USA)
Imprint Pagination
191 p.

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
21091775
Subject category
S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS; S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS; S99: GENERAL AND MISCELLANEOUS;
Resource subtype / Literary indicator
Thesis, Non-conventional Literature
Descriptors DEI
ALGORITHMS; COLLISION INTEGRALS; COMPUTER CALCULATIONS; DIFFERENTIAL GEOMETRY; KERNELS; MATHEMATICAL MODELS; NEUTRON TRANSPORT THEORY
Descriptors DEC
GEOMETRY; INTEGRALS; MATHEMATICS; TRANSPORT THEORY