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Communication Dans Un Congrès Année : 2019

InterFrost Project Phase 2: Updated experiment design for validation of Cryohydrogeological codes (Frozen Inclusion)

1 LSCE - Laboratoire des Sciences du Climat et de l'Environnement [Gif-sur-Yvette]
2 GEOPS - Géosciences Paris Saclay
3 APS Antriebs-, Prüf- und Steuertechnik GmbH,
4 School of Environmental Sciences [Norwich]
5 LMD - Laboratoire de Météorologie Dynamique (UMR 8539)
6 LANL - Los Alamos National Laboratory
7 CCSI - Climate Change Science Institute [Oak Ridge]
8 LPMM - Laboratoire de physique et mécanique des matériaux
9 Department of Physical Geography and Quaternary Geology
10 Division of Hydrologic Sciences
11 CEREGE - Centre européen de recherche et d'enseignement des géosciences de l'environnement
12 Golder Associates Kapellgränd 7, 11625 Stockholm, Sweden
13 SISYPHE - Structure et fonctionnement des systèmes hydriques continentaux
14 MDLS - Maison de la Simulation
15 CWRS - Centre dor Water Resources Studies [Halifax]
16 EPS - Department of Earth and Planetary Sciences [Montréal]
17 ULaval - Université Laval [Québec]
18 GET - Géosciences Environnement Toulouse
19 Technocentre Renault [Guyancourt]
20 PSL - Université Paris sciences et lettres
21 Mines Paris - PSL (École nationale supérieure des mines de Paris)
22 GEOSCIENCES - Centre de Géosciences
23 TU Darmstadt - Technische Universität Darmstadt - Technical University of Darmstadt
24 BGS - British Geological Survey
25 Swedish Nuclear Fuel and Waste Management Company
26 Département de géologie et de génie géologique, Université Laval, 1065 avenue de la Médecine, Québec, Canada, G1V
27 USGS - United States Geological Survey [Reston]
F. Costard
Samuel Kokh
Laurent Orgogozo
  • Fonction : Auteur
  • PersonId : 777670
  • IdRef : 145155021
Romain Pannetier
  • Fonction : Auteur
  • PersonId : 771203
  • IdRef : 178314250

Résumé

Recent field and modelling studies indicate that a fully-coupled, multi-dimensional, thermo-hydraulic (TH) approach is required to accurately model the evolution of permafrost-impacted landscapes and groundwater systems. However, the relatively new and complex numerical codes being developed for coupled non-linear freeze-thaw systems require validation. This issue was first addressed within the InterFrost IPA Action Group, by means of an intercomparison of thirteen numerical codes for two-dimensional TH test cases (TH2 & TH3). The main results (cf. Grenier et al. 2018 and wiki.lsce.ipsl.fr/interfrost) demonstrate that these codes provide robust results for the test cases considered. The second phase of the InterFrost project is devoted to the simulation of a cold-room reference experiment based on test case TH2 (Frozen Inclusion). In a first implementation phase of the experimental setup, the initial frozen inclusion was inserted in the setup prior to the complete filling of the porous medium and the flow initiation. The thermal evolution of the system was monitored by thermistors located at the center of the initial inclusion and along the downgradient centerline. This setup provided optimal conditions to control the initial experiment geometries but resulted in slight differences in the initialization time for different experiments. We present a second implementation strategy that considers "in place" generation of an initial frozen inclusion through a cooling coil. The initial frozen inclusion is obtained after the initial cooling time and its initial thermal state is measured by means of an array of thermistors. In a second step, the flow is initiated, and the thermal evolution is monitored through an array of 11 thermistors (within the initial position and downgradient). The experimental setup and monitoring results as well as preliminary simulation results are presented. Derived results and conclusions from this exercise form the basis for the next phase within the InterFrost validation exercise. Grenier, C. et al. 2018. Groundwater flow and heat transport for systems undergoing freeze-thaw: Inter-comparison of numerical simulators for 2D test cases.
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Dates et versions

hal-02404339 , version 1 (20-04-2023)

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Citer

Christophe Grenier, F. Costard, Hauke Anbergen, Victor F. Bense, Quentin Chanzy, et al.. InterFrost Project Phase 2: Updated experiment design for validation of Cryohydrogeological codes (Frozen Inclusion). EGU General Assembly 2019, Apr 2019, Vienne (AUT), France. pp.15194, ⟨10.5194/egusphere-egu2020-4865⟩. ⟨hal-02404339⟩
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