General information
Organisation
The French Alternative Energies and Atomic Energy Commission (CEA) is a key player in research, development and innovation in four main areas :
• defence and security,
• nuclear energy (fission and fusion),
• technological research for industry,
• fundamental research in the physical sciences and life sciences.
Drawing on its widely acknowledged expertise, and thanks to its 16000 technicians, engineers, researchers and staff, the CEA actively participates in collaborative projects with a large number of academic and industrial partners.
The CEA is established in ten centers spread throughout France
Reference
SL-DES-25-0071
Thesis topic details
Category
Engineering science
Thesis topics
Sub-Grid modelling of interfacial heat and mass transfers applied to condensation of bubble swarms
Contract
Thèse
Job description
To assess the safety of nuclear power plants, the CEA develops and uses multi-scale thermohydraulic simulation tools. The application of CFD to two-phase flows is limited because it requires many models that are difficult to determine. Among our other tools, direct numerical simulations (DNS) with resolved interfaces provide reference data inaccessible by experimental means. This is for example the case of bubble swarms, where heat and mass transfers are influenced by complex collective effects.
In order to reduce the cost of these DNS simulations, we recently developed an approach [1] which shows promising results: it consists of coupling a fine resolution of thermal transfers at the liquid-vapor interfaces to a far field calculated on a less resolved mesh. To broaden the application of this method to more industrial cases, it is necessary to take into account collisions between bubbles and to adapt the model to the phase change.
During this thesis, we propose to start with this physical modeling work and its implementation in C++ in our open-source simulation code TRUST/TrioCFD [2]. Next, we will use this new capacity to carry out a parametric study and an in-depth physical analysis of the phenomena which would ultimately lead to an improvement in heat transfer models in industrial codes.
[1] M. Grosso, G. Bois, A. Toutant, Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations, International Journal of Heat and Mass Transfer, Vol 222, 2024, https://doi.org/10.1016/j.ijheatmasstransfer.2023.124980
[2] Trio_CFD webpage : http://triocfd.cea.fr/recherche/modelisation-physique/two-phase-flows
University / doctoral school
Energie et Environnement (E2)
Perpignan
Thesis topic location
Site
Saclay
Requester
Position start date
01/10/2025
Person to be contacted by the applicant
BOIS Guillaume
guillaume.bois@cea.fr
CEA
DES/DM2S/STMF/LMSF
CEA Saclay
DES/ISAS/DM2S/STMF/LMSF
Batiment 451 – Point Courrier 43
91191 GIF-SUR-YVETTE Cédex – France
0169086986
Tutor / Responsible thesis director
Toutant Adrien
adrien.toutant@univ-perp.fr
Université de Perpignan
Laboratoire PROMES (UPR 8521)
PROMES
Rambla de la thermodynamique
TecnoSud
66100 PERPIGNAN
0468682709
En savoir plus
http://perso.univ-perp.fr/adrien.toutant
https://triocfd.cea.fr/Pages/Presentation/TrioCFD_code.aspx