Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module

The implementation and validation of multi-dimensional (multi-D) features in thermal-hydraulic system codes aims to extend the application of these codes towards multi-scale simulations. The main goal is the simulation of large-scale three-dimensional effects inside large volumes such as piping or v...

Full description

Bibliographic Details
Main Authors: E. Diaz Pescador, F. Schäfer, S. Kliem
Format: Article
Language:English
Published: Elsevier 2021-10-01
Series:Nuclear Engineering and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1738573321002138
id doaj-965be03fca6d487ebd6a6e1ac3e029fd
record_format Article
spelling doaj-965be03fca6d487ebd6a6e1ac3e029fd2021-08-06T04:21:10ZengElsevierNuclear Engineering and Technology1738-57332021-10-01531031823195Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-ModuleE. Diaz Pescador0F. Schäfer1S. Kliem2Helmholtz Zentrum Dresden Rossendorf (HZDR), 01328, Dresden, Germany; Technische Universität Dresden (TUD), 01069, Dresden, Germany; Corresponding author. Helmholtz Zentrum Dresden Rossendorf (HZDR), 01328, Dresden, Germany.Helmholtz Zentrum Dresden Rossendorf (HZDR), 01328, Dresden, GermanyHelmholtz Zentrum Dresden Rossendorf (HZDR), 01328, Dresden, GermanyThe implementation and validation of multi-dimensional (multi-D) features in thermal-hydraulic system codes aims to extend the application of these codes towards multi-scale simulations. The main goal is the simulation of large-scale three-dimensional effects inside large volumes such as piping or vessel. This novel approach becomes especially relevant during the simulation of accidents with strongly asymmetric flow conditions entailing density gradients. Under such conditions, coolant mixing is a key phenomenon on the eventual variation of the coolant temperature and/or boron concentration at the core inlet and on the extent of a local re-criticality based on the reactivity feedback effects. This approach presents several advantages compared to CFD calculations, mainly concerning the model size and computational efforts. However, the range of applicability and accuracy of the newly implemented physical models at this point is still limited and needs to be further extended. This paper aims at contributing to the validation of the multi-D features of the system code ATHLET based on the simulation of the Tests 1.1 and 2.1, conducted at the test facility ROCOM. Overall, the multi-D features of ATHLET predict reasonably well the evolution from both experiments, despite an observed overprediction of coolant mixing at the vessel during both experiments.http://www.sciencedirect.com/science/article/pii/S1738573321002138ATHLETCoolant mixingOvercooling transientROCOMTest 1.1 & 2.1
collection DOAJ
language English
format Article
sources DOAJ
author E. Diaz Pescador
F. Schäfer
S. Kliem
spellingShingle E. Diaz Pescador
F. Schäfer
S. Kliem
Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
Nuclear Engineering and Technology
ATHLET
Coolant mixing
Overcooling transient
ROCOM
Test 1.1 & 2.1
author_facet E. Diaz Pescador
F. Schäfer
S. Kliem
author_sort E. Diaz Pescador
title Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
title_short Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
title_full Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
title_fullStr Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
title_full_unstemmed Modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – Simulation of ROCOM tests 1.1 and 2.1 with ATHLET 3D-Module
title_sort modelling of multidimensional effects in thermal-hydraulic system codes under asymmetric flow conditions – simulation of rocom tests 1.1 and 2.1 with athlet 3d-module
publisher Elsevier
series Nuclear Engineering and Technology
issn 1738-5733
publishDate 2021-10-01
description The implementation and validation of multi-dimensional (multi-D) features in thermal-hydraulic system codes aims to extend the application of these codes towards multi-scale simulations. The main goal is the simulation of large-scale three-dimensional effects inside large volumes such as piping or vessel. This novel approach becomes especially relevant during the simulation of accidents with strongly asymmetric flow conditions entailing density gradients. Under such conditions, coolant mixing is a key phenomenon on the eventual variation of the coolant temperature and/or boron concentration at the core inlet and on the extent of a local re-criticality based on the reactivity feedback effects. This approach presents several advantages compared to CFD calculations, mainly concerning the model size and computational efforts. However, the range of applicability and accuracy of the newly implemented physical models at this point is still limited and needs to be further extended. This paper aims at contributing to the validation of the multi-D features of the system code ATHLET based on the simulation of the Tests 1.1 and 2.1, conducted at the test facility ROCOM. Overall, the multi-D features of ATHLET predict reasonably well the evolution from both experiments, despite an observed overprediction of coolant mixing at the vessel during both experiments.
topic ATHLET
Coolant mixing
Overcooling transient
ROCOM
Test 1.1 & 2.1
url http://www.sciencedirect.com/science/article/pii/S1738573321002138
work_keys_str_mv AT ediazpescador modellingofmultidimensionaleffectsinthermalhydraulicsystemcodesunderasymmetricflowconditionssimulationofrocomtests11and21withathlet3dmodule
AT fschafer modellingofmultidimensionaleffectsinthermalhydraulicsystemcodesunderasymmetricflowconditionssimulationofrocomtests11and21withathlet3dmodule
AT skliem modellingofmultidimensionaleffectsinthermalhydraulicsystemcodesunderasymmetricflowconditionssimulationofrocomtests11and21withathlet3dmodule
_version_ 1721219538721177600