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fatigue under cyclic loading in pressurized high-temperature water environments, with links to microstructure and manufacturing processes. The work combines material modeling using crystal plasticity and
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on modelling nucleation and evolution of damage under monotonically increasing or static loading in pressurized high-temperature water environments, with links to microstructure and manufacturing processes
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outcrops and perform mineralogical, geochemical, and microstructural analyses using ICP-OES, XRD, XRF, TEM, and X-ray CT Plan, execute, and analyse complex long-term petrophysical and geochemical laboratory
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(C) models and validated using data from operating geothermal sites. Your responsibilities: Select rock samples from outcrops and perform detailed mineralogical and microstructural analyses Conduct
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Microstructure Design of Sustainable Structural Metals” (SPP 2489), in close collaboration with a research partner responsible for the manufacturing and characterization of material samples. As such, the position
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microstructure and mechanical properties and correlate these with the process route. You will conduct modelling investigation and validation of the performance (wear, resistance to fatigue cracking) under working
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, including parameter optimisation and advanced monitoring techniques. Develop and refine process models, simulations, and automation strategies. Characterise microstructure, wear behaviour, and corrosion
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, spectroscopic signatures, microstructural images, processing conditions, and macroscale performance will be used for the optimization of materials. The candidate will collaborate extensively with in
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: https//phelma.grenoble-inp.fr/ Contacts : ronald.phlypo@grenoble-inp.fr School presentation : Grenoble INP Phelma is an engineering school of the Grenoble Polytechnic Institute. It offers its students a
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the effect of thermal tempering on thin film microstructure while focusing on the evolution of mechanical properties and adhesion. Different thin film stack architectures will be synthetized by PVD techniques