Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System
The cold neutron source (CNS) system of the Open Pool Australian Light-Water (OPAL) reactor is a 20 L cryogenically cooled liquid deuterium thermosiphon system. The CNS is cooled by forced convective helium which is held at room temperature during stand-by (SO) mode and at ~20 K during normal operat...
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doaj-935ec3cf286f4ae19b4e06d6567b12d92020-11-24T23:52:40ZengHindawi LimitedScience and Technology of Nuclear Installations1687-60751687-60832016-01-01201610.1155/2016/54520855452085Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon SystemMark Ho0Yeongshin Jeong1Haneol Park2Guan Heng Yeoh3Weijian Lu4Australian Nuclear Science and Technology Organisation (ANSTO), Locked Bag 2001, Kirrawee, NSW 2232, AustraliaAustralian Nuclear Science and Technology Organisation (ANSTO), Locked Bag 2001, Kirrawee, NSW 2232, AustraliaAustralian Nuclear Science and Technology Organisation (ANSTO), Locked Bag 2001, Kirrawee, NSW 2232, AustraliaAustralian Nuclear Science and Technology Organisation (ANSTO), Locked Bag 2001, Kirrawee, NSW 2232, AustraliaAustralian Nuclear Science and Technology Organisation (ANSTO), Locked Bag 2001, Kirrawee, NSW 2232, AustraliaThe cold neutron source (CNS) system of the Open Pool Australian Light-Water (OPAL) reactor is a 20 L cryogenically cooled liquid deuterium thermosiphon system. The CNS is cooled by forced convective helium which is held at room temperature during stand-by (SO) mode and at ~20 K during normal operation (NO) mode. When helium cooling stops, the reactor is shut down to prevent the moderator cell from overheating. This computational fluid dynamics (CFD) study aims to determine whether the combined effects of conduction and natural convection would provide sufficient cooling for the moderator cell under the influence of reactor decay heat after reactor shutdown. To achieve this, two commercial CFD software packages using an identical CFD mesh were first assessed against an experimental heat transfer test of the CNS. It was found that both numerical models were valid within the bounds of experimental uncertainty. After this, one CFD model was used to simulate the thermosiphon transient condition after the reactor is shut down. Two independent shutdown conditions of different decay-heat power profiles were simulated. It was found that the natural convection and conduction cooling in the thermosiphon were sufficient for dissipating both decay-heat profiles, with the moderator cell remaining below the safe temperature of 200°C.http://dx.doi.org/10.1155/2016/5452085 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mark Ho Yeongshin Jeong Haneol Park Guan Heng Yeoh Weijian Lu |
spellingShingle |
Mark Ho Yeongshin Jeong Haneol Park Guan Heng Yeoh Weijian Lu Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System Science and Technology of Nuclear Installations |
author_facet |
Mark Ho Yeongshin Jeong Haneol Park Guan Heng Yeoh Weijian Lu |
author_sort |
Mark Ho |
title |
Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System |
title_short |
Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System |
title_full |
Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System |
title_fullStr |
Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System |
title_full_unstemmed |
Using CFD as Preventative Maintenance Tool for the Cold Neutron Source Thermosiphon System |
title_sort |
using cfd as preventative maintenance tool for the cold neutron source thermosiphon system |
publisher |
Hindawi Limited |
series |
Science and Technology of Nuclear Installations |
issn |
1687-6075 1687-6083 |
publishDate |
2016-01-01 |
description |
The cold neutron source (CNS) system of the Open Pool Australian Light-Water (OPAL) reactor is a 20 L cryogenically cooled liquid deuterium thermosiphon system. The CNS is cooled by forced convective helium which is held at room temperature during stand-by (SO) mode and at ~20 K during normal operation (NO) mode. When helium cooling stops, the reactor is shut down to prevent the moderator cell from overheating. This computational fluid dynamics (CFD) study aims to determine whether the combined effects of conduction and natural convection would provide sufficient cooling for the moderator cell under the influence of reactor decay heat after reactor shutdown. To achieve this, two commercial CFD software packages using an identical CFD mesh were first assessed against an experimental heat transfer test of the CNS. It was found that both numerical models were valid within the bounds of experimental uncertainty. After this, one CFD model was used to simulate the thermosiphon transient condition after the reactor is shut down. Two independent shutdown conditions of different decay-heat power profiles were simulated. It was found that the natural convection and conduction cooling in the thermosiphon were sufficient for dissipating both decay-heat profiles, with the moderator cell remaining below the safe temperature of 200°C. |
url |
http://dx.doi.org/10.1155/2016/5452085 |
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