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. The results obtained will be used to derive kinetic parameters of reactivity. The work program includes: i) the fabrication of micro-models of increasing complexity, ranging from model porous media to natural
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Inria, the French national research institute for the digital sciences | Saclay, le de France | France | 2 months ago
phenomena. New meta-model architectures based on learning may be proposed and tested on complex EDF use cases. However, this is not sufficient: can such a surrogate, learned from simulation data, predict
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aerospace? Join our team and collaborate with industry partners to bring quantum computing closer to real-world engineering. Job description The aerospace sector faces increasingly complex engineering
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, and on-board power systems for aircraft and ships. The increasing capacity and complexity of the electrical systems in these applications is creating a range of challenges at equipment and system levels
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). Stephen Griffies, who was awarded a Choose France fellowship, spent much of his career at NOAA's Geophysical Fluid Dynamics Laboratory (GFDL) and Princeton University. Together with Gurvan Madec, he is
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. Mathematics is the key to unlocking innovation and addressing these complexities. They all require new, predictive models that can link the processing and microstructure of formulated products to their final
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/microrobots that can move and interact autonomously in 3D environments, mimicking the complex dynamics of microorganisms in fluids. Living systems such as bacteria or algae exhibit remarkable capabilities
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for practical applications. Finite particle size and velocity introduce complex inertial phenomena, such as particle-induced fluctuations, a gradual transition to turbulence, and shear-induced migration
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substantial background in fluid mechanics. Essential skills: Strong knowledge of numerical methods Ability to work effectively in a team Desirable skills / experience: Experience of applying CFD to a complex
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microswimmers/microrobots that can move and interact autonomously in 3D environments, mimicking the complex dynamics of microorganisms in fluids. Living systems such as bacteria or algae exhibit remarkable