Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

New core-reflector boundary conditions for transient nodal reactor calculations

Journal Article · · Nuclear Science and Engineering
OSTI ID:109986
;  [1];  [2]
  1. Seoul National Univ. (Korea, Republic of). Dept. of Nuclear Engineering
  2. Korea Atomic Energy Research Inst., Taejon (Korea, Republic of)

New core-reflector boundary conditions designed for the exclusion of the reflector region in transient nodal reactor calculations are formulated. Spatially flat frequency approximations for the temporal neutron behavior and two types of transverse leakage approximations in the reflector region are introduced to solve the transverse-integrated time-dependent one-dimensional diffusion equation and then to obtain relationships between net current and flux at the core-reflector interfaces. To examine the effectiveness of new core-reflector boundary conditions in transient nodal reactor computations, nodal expansion method (NEM) computations with and without explicit representation of the reflector are performed for Laboratorium fuer Reaktorregelung und Anlagen (LRA) boiling water reactor (BWR) and Nuclear Energy Agency Committee on Reactor Physics (NEACRP) pressurized water reactor (PWR) rod ejection kinetics benchmark problems. Good agreement between two NEM computations is demonstrated in all the important transient parameters of two benchmark problems. A significant amount of CPU time saving is also demonstrated with the boundary condition model with transverse leakage (BCMTL) approximations in the reflector region. In the three-dimensional LRA BWR, the BCMTL and the explicit reflector model computations differ by {approximately}4% in transient peak power density while the BCMTL results in >40% of CPU time saving by excluding both the axial and the radial reflector regions from explicit computational nodes. In the NEACRP PWR problem, which includes six different transient cases, the largest difference is 24.4% in the transient maximum power in the one-node-per-assembly B1 transient results. This difference in the transient maximum power of the B1 case is shown to reduce to 11.7% in the four-node-per-assembly computations. As for the computing time, BCMTL is shown to reduce the CPU time >20% in all six transient cases of the NEACRP PWR.

OSTI ID:
109986
Journal Information:
Nuclear Science and Engineering, Journal Name: Nuclear Science and Engineering Journal Issue: 1 Vol. 121; ISSN NSENAO; ISSN 0029-5639
Country of Publication:
United States
Language:
English

Similar Records

A new approach to core-reflector boundary conditions for nodal reactor computations
Journal Article · Thu Mar 31 23:00:00 EST 1994 · Nuclear Science and Engineering; (United States) · OSTI ID:7110784

Solution of mathematical adjoint equation for a higher order nodal expansion method
Journal Article · Mon Jul 01 00:00:00 EDT 1996 · Nuclear Science and Engineering · OSTI ID:282416

A nodal expansion method with spatially coupled effects incorporated into the transverse leakage approximation
Journal Article · Thu Nov 30 23:00:00 EST 1989 · Nuclear Science and Engineering; (USA) · OSTI ID:6923717