A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors

This paper presents a new and efficient scheme to determine the optimal neutron source position in a model near-equilibrium pressurized water reactor, which is based on the OPR1000 Hanul Unit 3 Cycle 7 configuration. The proposed scheme particularly assigns importance of source positions according t...

Full description

Saved in:
Bibliographic Details
Main Authors: Sun, J., Yahya, M.-S., Kim, Y.
Format:
Published: 2018
Online Access:http://dspace.uniten.edu.my/jspui/handle/123456789/8967
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.uniten.dspace-8967
record_format dspace
spelling my.uniten.dspace-89672018-02-21T04:48:46Z A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors Sun, J. Yahya, M.-S. Kim, Y. This paper presents a new and efficient scheme to determine the optimal neutron source position in a model near-equilibrium pressurized water reactor, which is based on the OPR1000 Hanul Unit 3 Cycle 7 configuration. The proposed scheme particularly assigns importance of source positions according to the local adjoint flux distribution. In this research, detailed pin-by-pin reactor adjoint fluxes are determined by using the Monte Carlo KENO-VI code from solutions of the reactor homogeneous critical adjoint transport equations. The adjoint fluxes at each allowable source position are subsequently ranked to yield four candidate positions with the four highest adjoint fluxes. The study next simulates ex-core detector responses using the Monte Carlo MAVRIC code by assuming a neutron source is installed in one of the four candidate positions. The calculation is repeated for all positions. These detector responses are later converted into an inverse count rate ratio curve for each candidate source position. The study confirms that the optimal source position is the one with very high adjoint fluxes and detector responses, which is interestingly the original source position in the OPR1000 core, as it yields an inverse count rate ratio curve closest to the traditional 1/M line. The current work also clearly demonstrates that the proposed adjoint flux-based approach can be used to efficiently determine the optimal geometry for a neutron source and a detector in a modern pressurized water reactor core. © 2016 2018-02-21T04:48:46Z 2018-02-21T04:48:46Z 2016 http://dspace.uniten.edu.my/jspui/handle/123456789/8967
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
description This paper presents a new and efficient scheme to determine the optimal neutron source position in a model near-equilibrium pressurized water reactor, which is based on the OPR1000 Hanul Unit 3 Cycle 7 configuration. The proposed scheme particularly assigns importance of source positions according to the local adjoint flux distribution. In this research, detailed pin-by-pin reactor adjoint fluxes are determined by using the Monte Carlo KENO-VI code from solutions of the reactor homogeneous critical adjoint transport equations. The adjoint fluxes at each allowable source position are subsequently ranked to yield four candidate positions with the four highest adjoint fluxes. The study next simulates ex-core detector responses using the Monte Carlo MAVRIC code by assuming a neutron source is installed in one of the four candidate positions. The calculation is repeated for all positions. These detector responses are later converted into an inverse count rate ratio curve for each candidate source position. The study confirms that the optimal source position is the one with very high adjoint fluxes and detector responses, which is interestingly the original source position in the OPR1000 core, as it yields an inverse count rate ratio curve closest to the traditional 1/M line. The current work also clearly demonstrates that the proposed adjoint flux-based approach can be used to efficiently determine the optimal geometry for a neutron source and a detector in a modern pressurized water reactor core. © 2016
format
author Sun, J.
Yahya, M.-S.
Kim, Y.
spellingShingle Sun, J.
Yahya, M.-S.
Kim, Y.
A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
author_facet Sun, J.
Yahya, M.-S.
Kim, Y.
author_sort Sun, J.
title A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
title_short A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
title_full A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
title_fullStr A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
title_full_unstemmed A Study on the Optimal Position for the Secondary Neutron Source in Pressurized Water Reactors
title_sort study on the optimal position for the secondary neutron source in pressurized water reactors
publishDate 2018
url http://dspace.uniten.edu.my/jspui/handle/123456789/8967
_version_ 1644494582937812992
score 13.160551