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, applied physics or a closely related discipline. Specific Requirements We are looking for candidates with: A strong foundation in thermodynamics, fluid mechanics, heat transfer and combustion. Motivation
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evolution at high temperature. The transition towards smarter, lower-carbon manufacturing demands new ways to understand and monitor how materials evolve during processing. This PhD project addresses a
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fracture twin: Digital twin development for hydrogen-assisted crack propagation in buried steel pipelines [APS, Tata Steel; Karo Sedighiani] PhD 7: Cryogenic interface heat transfer for advanced thermal
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Horizon Europe – MSCA-DN, tackles challenges in designing, optimizing, selecting materials, and manufacturing small-scale turbomachinery for applications in heat pumps, fuel cells, organic Rankine cycles
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understanding of energy-conversion systems, thermodynamics, electrical engineering, heat and mass transfer, electrochemistry, or control engineering. The ability to conduct independent, systematic, and
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Explore trace element thermodynamics in high-temperature systems to control steel quality in the green transition—a PhD bridging experiments, modelling, and industrial impact. Job description The
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computing environment. A fundamental understanding of energy-conversion systems, thermodynamics, electrical engineering, heat and mass transfer, electrochemistry, or control engineering. The ability
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fluxes up to 300 kg/m²·s), gas velocities up to 1000 m/s, and heat transfer coefficients up to 35,000 W/m²·K. Under such conditions, conventional ceramic materials undergo rapid degradation through
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modelling heat and mass transfer fluid mechanics reactor physics A strong interest in scientific computing and simulation. The qualities to carry out independent research, demonstrated, e.g., by the grades
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, pressures up to 10 MPa, mass fluxes up to 6500 kg/m²·s (including particulate fluxes up to 300 kg/m²·s), gas velocities up to 1000 m/s, and heat transfer coefficients up to 35,000 W/m²·K. Under