Burnup calculations using Monte Carlo method
Creators
- 1. Theoretical Physics Division, Bhabha Atomic Research Centre, Mumbai (India)
Description
In the recent years, interest in burnup calculations using Monte Carlo methods has gained momentum. Previous burn up codes have used multigroup transport theory based calculations followed by diffusion theory based core calculations for the neutronic portion of codes. The transport theory methods invariably make approximations with regard to treatment of the energy and angle variables involved in scattering, besides approximations related to geometry simplification. Cell homogenisation to produce diffusion, theory parameters adds to these approximations. Moreover, while diffusion theory works for most reactors, it does not produce accurate results in systems that have strong gradients, strong absorbers or large voids. Also, diffusion theory codes are geometry limited (rectangular, hexagonal, cylindrical, and spherical coordinates). Monte Carlo methods are ideal to solve very heterogeneous reactors and/or lattices/assemblies in which considerable burnable poisons are used. The key feature of this approach is that Monte Carlo methods permit essentially 'exact' modeling of all geometrical detail, without resort to ene and spatial homogenization of neutron cross sections. Monte Carlo method would also be better for in Accelerator Driven Systems (ADS) which could have strong gradients due to the external source and a sub-critical assembly. To meet the demand for an accurate burnup code, we have developed a Monte Carlo burnup calculation code system in which Monte Carlo neutron transport code is coupled with a versatile code (McBurn) for calculating the buildup and decay of nuclides in nuclear materials. McBurn is developed from scratch by the authors. In this article we will discuss our effort in developing the continuous energy Monte Carlo burn-up code, McBurn. McBurn is intended for entire reactor core as well as for unit cells and assemblies. Generally, McBurn can do burnup of any geometrical system which can be handled by the underlying Monte Carlo transport code. Automatic refueling can also be done for some systems with McBurn. This code has been verified through the analyses of IAEA ADS benchmark problem and burnup of 19-rod U/Th clusters used in PHWRs. Results of core burnup and refueling are also presented. (author)
Additional details
Publishing Information
- Publisher
- Department of Atomic Energy
- Imprint Place
- Mumbai (India)
- ISBN
- 978-81-8372-047-2
- Imprint Title
- Applications of Monte Carlo methods in nuclear science and engineering
- Imprint Pagination
- 448 p.
- Journal Page Range
- p. 144-191
Conference
- Title
- applications of Monte Carlo methods in nuclear science and engineering
- Acronym
- DAE-BRNS theme meeting
- Dates
- 21-24 Apr 2009
- Place
- Mumbai (India)
INIS
- Country of Publication
- India
- Country of Input or Organization
- India
- INIS RN
- 41020897
- Subject category
- S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- BURNUP; M CODES; MONTE CARLO METHOD; NEUTRON TRANSPORT; PHWR TYPE REACTORS; REACTOR CORES; SUBCRITICAL ASSEMBLIES
- Descriptors DEC
- CALCULATION METHODS; COMPUTER CODES; EXPERIMENTAL REACTORS; HEAVY WATER COOLED REACTORS; HEAVY WATER MODERATED REACTORS; NEUTRAL-PARTICLE TRANSPORT; RADIATION TRANSPORT; REACTOR COMPONENTS; REACTORS; RESEARCH AND TEST REACTORS
Optional Information
- Notes
- 18 refs., 27 figs., 5 tabs.