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extraction development of a correlative image analysis platform enabling automated extraction of sample morphologies (e.g., porosity, tortuosity, connectivity) and fluid flow characteristics from X-ray and
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correlative image analysis platform enabling automated extraction of sample morphologies (e.g., porosity, tortuosity, connectivity) and fluid flow characteristics from X-ray and electron imaging. integration
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morphologies (e.g., porosity, tortuosity, connectivity) and fluid flow characteristics from X-ray and electron imaging integration of motion analysis in collaboration processing of images in preparation
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the impact of each HFC candidate. Despite the expected widespread use of HFC with low GWP as flame suppressants and refrigerant working fluids, only limited information is available on detailed chemical
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extraction development of a correlative image analysis platform enabling automated extraction of sample morphologies (e.g., porosity, tortuosity, connectivity) and fluid flow characteristics from X-ray and
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Your Job: Development and optimization of high-temperature heat pipes for fusion applications Numerical simulations of heat transfer and fluid dynamics in heat pipes using COMSOL, ANSYS, or similar
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aspects across a wide range of fields - from biomechanics and geophysics to polymer-fluid coupling. Further areas of interest include numerical algorithms for high-dimensional problems, classical (mainly
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Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung | Bremerhaven, Bremen | Germany | 3 months ago
in geophysical fluid dynamics; previous experience with internal waves, tides, or sea ice is an asset Very good English and communication skills (approximately equivalent to CEFR level C1) Experience
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Alfred-Wegener-Institut Helmholtz-Zentrum für Polar- und Meeresforschung | Bremerhaven, Bremen | Germany | 3 months ago
. We work at the intersection of glaciology, fluid dynamics and applied mathematics, and collaborate extensively with colleagues around the globe. Your Tasks Analyze and interpret in-situ geophysical
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investigate methods that eventually will automate crucial design steps. In addition, we are developing simulators (on various abstraction levels; using, e.g., Computational Fluid Dynamics) which enables us to