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kinetics within this complex multiphasic system under dynamic conditions. This work may utilize PhreeqC scripts or Fortran/Python code. Activities: • Assembly, disassembly, operation, and maintenance of a
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, contributing to research in the field of artificial learning. The data generated by this doctoral work will be deposited on open archaeological databases (Nakala, Huma-Num, POP, etc.), and the algorithmic code
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trajectories within the virtual environment; in complementary laboratory studies: eye-tracking, body and facial tracking) in articulation with post-experience verbalizations coded according to the taxonomic grid
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selecting simulations to run based on a given prediction objective. • Implement and validate these developments in the YALES2 code. • Utilize high-performance computing resources to run the simulations
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investigations using the ConBo facility and numerical modeling of the system using an Euler-Euler framework (by coupling the NEPTUNE_CFD and Syrthes codes [1], developed by key players in the French nuclear sector
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fracture and stress field in realistic three-dimensional geometries. Our research group has been working toward such a model by developing the Elmer/Ice finite element code, which includes most
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difference operators, our focus will be on a Fourier-space description of spatially periodic velocity fields, taking direct inspiration from Fourier pseudo-spectral methods used in standard DNS codes