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balance between accuracy and computational efficiency, while also enabling the modelling of aging effects in polymer systems. Objectives: The primary objective of this project is to develop an advanced MACE
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to overcome tritium permeation, with the following objectives: Uncover the mechanisms driving hydrogen penetration. Evaluate the processes of different sites as a function of surface chemistry, microstructure
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the cerebral cortex. fUS ultrasound waves are similar to CUS but using novel image reconstruction techniques and parallel computing technologies reaching 10,000 frames per second, enables very sensitive mapping
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-class or second-class honours degree in automobile engineering or mechanical engineering or aerospace engineering with a focus on thermofluids or aerodynamics. Funding: To be eligible for these funding
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Maguire. Training and Mentoring: You will learn a multidisciplinary set of practical skills including reaction kinetics, enzymatic chemistry, analytical techniques (e.g. NMR / fluorescence / UVVis
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devices that rely on superior thermal insulation to deliver energy. Applicants should hold, or are expected to achieve, a 1st or 2:1 honours degree in Materials Science or Chemistry To apply, please contact
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similar chemistry owing to common valence electronic structure but varying numbers of nearly bound f-electrons, which determine magnetic properties. Using recent advances in modelling alloys and f-electron
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Applications are invited to undertake a three-year PhD programme in partnership with industry to address key challenges in manufacturing engineering. The successful candidate will be based
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new. Applicants should have (or expect to obtain by the start date) at least a good 2.1 degree (and preferably a Masters degree) in Engineering or Physical Sciences. Applicants should be able
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dynamic School of Biological Sciences (https://www.southampton.ac.uk/about/faculties-schools-departments/school-of-biological-sciences ). The project will involve close collaboration with an international