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on the performance of high strength 6xxx aluminium alloys at the Department of Materials, The University of Manchester and in collaboration with Constellium. The successful applicant will receive an annual stipend
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conditions. This project aims to develop a new control framework that enables embodied decision-making in autonomous swarms, allowing them to operate with resilience, reliability, and adaptability. The work
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(HVDC) technology will be used to bundle energy from several windfarms and transport to load centres. Future offshore wind farms are expected to be further optimized either functionally or in
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naturally-occurring brines derived from granite-water interaction and thereby avoiding energy intensive, extractive mining. Faults play a key role in these systems by acting as fluid flow conduits and sites
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. This project will be based at the University of Manchester with experiments carried out at the ISOLDE facility at CERN, Switzerland. It will use state-of-the-art laser spectroscopy techniques, such as Collinear
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(£20,780 for 2025/26) and tuition fees will be paid. The offshore environment is characterised by complex and highly dynamic turbulent flows that define the performance and design of renewable energy systems
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paired with digital signatures provide confidentiality, integrity and authenticity. Nevertheless, the various functionalities offered by information technology services require more advanced protocols such
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recently constructed electrostatic ConeTrap and use it, for the first time, to facilitate high efficiency, high precision laser spectroscopy. The developed spectroscopy will then enable precision
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to develop and analyse implementable, fully discrete methods for function approximation, density estimation, and/or time-dependent PDEs or SDEs in high dimensions, with links to UQ and theoretical
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field deployment. Current radiochromic dosimeters (e.g. silver halide/diacetylene) offer superior performance over traditional scintillators but suffer from post-exposure readout, temperature sensitivity