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Postdoctoral researcher (M/F). Modeling damage during earthquakes. Comparison with geophysical data.
), an internationally renowned laboratory that combines fieldwork, experimentation, and modeling to advance understanding of geological processes, continental surface dynamics, fracture-fluid interactions, and natural
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: combining microscopic modelling and simulations (e.g., Brownian dynamics) with continuum approaches (e.g., statistical field theory) to study the macroscopic behaviour of proliferating active systems such as
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applications in fluid dynamics At least 3 publications in specialty journals indexed in relevant databases, corresponding to the project’s topic Specific Requirements The successful candidate will report to
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Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No Offer Description For the independent research group “Theory of Biological Fluids” headed by
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engine dynamometer testing and high-fidelity physics-based modeling, with a focus on the intersection of combustion, fluid, and structural dynamics. Key Responsibilities: Design, execute, and analyze
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simulations and computational fluid dynamics will be preferred. Excellent proposal writing and report writing skill Excellent journal paper publication record Self-motivated and able to work on your own and in
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being part of these two networks. Subject description The project involves mathematical modelling of complex fluid dynamics, in particular viscoelastic flows in nano-structures. The work involves
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) Country Sweden Type of Contract Temporary Job Status Full-time Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a
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– together. At the Division of Fluid Dynamics , we develop advanced experimental and computational techniques to investigate flows in both fundamental and applied contexts. Using state-of-the-art laboratory
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computational models to capture the Multiphysics behavior— including fluid flow, heat transfer, and reaction dynamics—governing the co-precipitation process. Leveraging the ASCC supercomputer at UM6P, three