Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary
Development of HTRs requires the performance of a thorough safety study, which includes accident analyses. Confinement building performance is a key element of the system since the behaviour of aerosol and attached fission products within the building is of an utmost relevance in terms of the potent...
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2009-01-01
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Series: | Science and Technology of Nuclear Installations |
Online Access: | http://dx.doi.org/10.1155/2009/687634 |
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doaj-71437881171e4a0294da7e2768f300432020-11-24T22:20:10ZengHindawi LimitedScience and Technology of Nuclear Installations1687-60751687-60832009-01-01200910.1155/2009/687634687634Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure BoundaryJoan Fontanet0Luis E. Herranz1Alastair Ramlakan2Lolan Naicker3Unit of Nuclear Safety Research, CIEMAT, Avenida Complutense, 22 28040 Madrid, SpainUnit of Nuclear Safety Research, CIEMAT, Avenida Complutense, 22 28040 Madrid, SpainPebble Bed Modular Reactor (Pty) Limited, 1279 Mike Crawford Avenue, 0046 Centurion, South AfricaPebble Bed Modular Reactor (Pty) Limited, 1279 Mike Crawford Avenue, 0046 Centurion, South AfricaDevelopment of HTRs requires the performance of a thorough safety study, which includes accident analyses. Confinement building performance is a key element of the system since the behaviour of aerosol and attached fission products within the building is of an utmost relevance in terms of the potential source term to the environment. This paper explores the available simulation capabilities (ASTEC and CONTAIN codes) and illustrates the performance of a postulated HTR vented confinement under prototypical accident conditions by a scoping study based on two accident sequences characterized by Helium Pressure Boundary breaches, a small and a large break. The results obtained indicate that both codes predict very similar thermal-hydraulic responses of the confinement both in magnitude and timing. As for the aerosol behaviour, both codes predict that most of the inventory coming into the confinement is eventually depleted on the walls and only about 1% of the aerosol dust is released to the environment. The crosscomparison of codes states that largest differences are in the intercompartmental flows and the in-compartment gas composition.http://dx.doi.org/10.1155/2009/687634 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Joan Fontanet Luis E. Herranz Alastair Ramlakan Lolan Naicker |
spellingShingle |
Joan Fontanet Luis E. Herranz Alastair Ramlakan Lolan Naicker Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary Science and Technology of Nuclear Installations |
author_facet |
Joan Fontanet Luis E. Herranz Alastair Ramlakan Lolan Naicker |
author_sort |
Joan Fontanet |
title |
Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary |
title_short |
Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary |
title_full |
Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary |
title_fullStr |
Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary |
title_full_unstemmed |
Modelling of HTR Confinement Behaviour during Accidents Involving Breach of the Helium Pressure Boundary |
title_sort |
modelling of htr confinement behaviour during accidents involving breach of the helium pressure boundary |
publisher |
Hindawi Limited |
series |
Science and Technology of Nuclear Installations |
issn |
1687-6075 1687-6083 |
publishDate |
2009-01-01 |
description |
Development of HTRs requires the performance of a thorough safety study, which includes accident analyses. Confinement building performance is a key element of the system since the behaviour of aerosol and attached fission products within the building is of an utmost relevance in terms of the potential source term to the environment. This paper explores the available simulation capabilities (ASTEC and CONTAIN codes) and illustrates the performance of a postulated HTR vented confinement under prototypical accident conditions by a scoping study based on two accident sequences characterized by Helium Pressure Boundary breaches, a small and a large break. The results obtained indicate that both codes predict very similar thermal-hydraulic responses of the confinement both in magnitude and timing. As for the aerosol behaviour, both codes predict that most of the inventory coming into the confinement is eventually depleted on the walls and only about 1% of the aerosol dust is released to the environment. The crosscomparison of codes states that largest differences are in the intercompartmental flows and the in-compartment gas composition. |
url |
http://dx.doi.org/10.1155/2009/687634 |
work_keys_str_mv |
AT joanfontanet modellingofhtrconfinementbehaviourduringaccidentsinvolvingbreachoftheheliumpressureboundary AT luiseherranz modellingofhtrconfinementbehaviourduringaccidentsinvolvingbreachoftheheliumpressureboundary AT alastairramlakan modellingofhtrconfinementbehaviourduringaccidentsinvolvingbreachoftheheliumpressureboundary AT lolannaicker modellingofhtrconfinementbehaviourduringaccidentsinvolvingbreachoftheheliumpressureboundary |
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1725776573064282112 |