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and viscosity of flows. Develop and invent novel measurement strategies and methods. Set up a quantitative, experimentally validated model of the ultrasonic flow sensors Design an experimental sensing
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across relevant temperature, composition, and redox conditions, and translating these insights into predictive models for industrial application. You will design and conduct high-temperature equilibration
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Develop CMOS-compatible broadband photodetectors for compact spectropolarimetric cameras. You will design, fabricate and characterise detector structures for space-based Earth observation. Job
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during polycondensation Reaction and aging in quasi-2D micromodels of porous media designed in the lab. Results will bring valuable pore-scale information on gelation and polycondensation, not accessible
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understanding, design, production including application and product improvement, materials, processes and (mechanical) systems. ME is a dynamic and innovative faculty with high-tech lab facilities and
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education at the ME faculty focusses on fundamental understanding, design, production including application and product improvement, materials, processes and (mechanical) systems. ME is a dynamic and
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on selected instrumented railway bridges. Building on these insights, an on-board measurement system (e.g., based on Axle Box Acceleration (ABA) or Laser Doppler Vibrometry (LDV)) will be designed and
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and Chemistry Department at TU Eindhoven (Martin van Sint Annaland). Your work will start with the design, modelling and evaluation of resistive heating concepts in collaboration between T.EN, NEM, TU/e
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-driven AI. A key innovation is the use of sensitivity analysis (SA) and uncertainty quantification (UQ) to make these models transparent, testable, and trustworthy for clinical decision-making. You will
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, an expert partner in advanced movement measurement and analysis. As a PhD candidate, you will play a central role in the design and execution of this research project. Your responsibilities will include