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of the key challenges facing the hydrogen economy: understanding how hydrogen interacts with the complex microstructures of circular steels and causes degradation and failure. This position is part of
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of complex thermo-mechanical behaviour (e.g., plasticity, damage, fracture) in engineering materials at different length scales, which emerges from the physics and mechanics of the underlying multi-phase
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dies will be designed to allow processing of different shapes (strains), at different temperatures and at different forging rates. The project runs alongside the commercialisation of the process, and
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., plasticity, damage, fracture) in engineering materials at different length scales, which emerges from the physics and mechanics of the underlying multi-phase microstructure. An integrated numerical
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-mechanical properties. Alternatively, cell concepts based on metallic support structures exhibit excellent mechanical strength but require fundamentally different manufacturing processes. The most common
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understanding of microstructure-property relationships in materials systems in the presence of different stimuli close to operational conditions. Such knowledge is crucial for designing advanced materials with
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embrittlement (HE) in circular steels, with a particular focus on the role of tramp elements at experimentally informed microstructural features. You will combine first-principles modelling and machine-learning
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): the PhD student will finally work again in Saint-Aulaye on the site of the company CERAQUITAINE. Objectives: understanding how the microstructure of industrial refractory materials controls
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Radiological, chemical and microstructural characterisation of legacy and candidate AMR graphites for recycling, reuse and lifecycle decision-making DoS: Dr Katie Jones 2nd Supervisor: Dr Hayley
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processing to the formation of undesirable phases in the final microstructure. This challenge is particularly relevant for martensitic stainless steels, a technologically important class of materials whose