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Field
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sputtering). A coupled approach, involving experiments and Multiphysics numerical simulation will be implemented. A thorough investigation of the relationships between deposition conditions (temperatures
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emulator of sea ice dynamics, trained using high-fidelity numerical simulations, (ii) variational data assimilation methods, and (iii) a simplified representation of physical processes in the atmospheric
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electromagnetics and antenna theory • Experience with numerical simulation tools (e.g., CST, HFSS, COMSOL) • Knowledge of microwave/millimeter-wave systems • Experience with laboratory measurements and experimental
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personality. A current CV including any participation in scientific conferences or publications A copy of your Masters Degree transcript The names and contact information (email) of at least two references who
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for airBORNe applications” project (https://newborn-project.eu/) and develop a real-time Multiphysics Digital Twin for such a system accelerating future electric propulsion system development. Motivation
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characterize and analyze experimentally the fluctuations occurring in the plasma. - ROCINANTE-D2: Your PhD thesis will consist in the development of an advanced Particle-In-Cell simulation framework in the Julia
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to apply: Please send a single PDF containing a cover letter with the description of your previous research experience and motivation to join our lab; curriculum vitae; a certified copy of your
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of theoretical although both will explore the interfaces between theory and experiment. They will both be hosted by the Quantum Information team (https://qi.lip6.fr/ ) of the Computer Science department (LIP6
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consortium partners Joint supervision and access to a multi-stakeholder ecosystem Full details and official call documentation: https://marie-sklodowska-curie-actions.ec.europa.eu/actions/doctoral-networks
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of oxygenates from CO and/or CO2, and mechanistic studies including operando spectroscopy and possibly numerical simulations (microkinetics, DFT). The objective is to discover new eco-efficient catalytic phases