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practices. The research will explore factors such as remaining useful life of key components, turbine loading and structural integrity, regulatory constraints, supply-chain considerations, and evolving market
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key elements to answer the question of the causes of changes in ozone trends throughout the troposphere. This will involve exploring regional and vertical differences to better understand the dominant
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disentanglement of so-called task vectors. In this project we aim to explore how different aspects of speech data are expressed in model space, in the context of automatic speech recognition and diarisation
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(Masaryk University, Czech Republic), working at the forefront of plasma-enabled materials design for next-generation energy storage. Our research explores high-entropy ceramic thin films as a new platform
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for each field (*except for R26-03) R26-03 Battery Materials and Characterization (*several positions available) R26-04 Advanced Superconducting Wire R26-05 Designing and Exploration of Electro-ceramics
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reliance on continuous external fuel or electricity input. This project will combine experimental and modelling studies to explore operating windows, internal heat management strategies, and the cycling
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will complement site characterisation and physical testing, enabling exploration of hydrodynamic behaviour at device and array scales. The project is supported by industry partners Moffat & Nichol, who
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Ryzen CPU, GPU, and NPU, in terms of inference speed, energy consumption, accuracy, and performance per watt. Different quantization levels (e.g., int8, fp16) will also be explored. Develop intelligent
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projects that involve data analysis, the application of artificial intelligence, the development of new detection techniques, and the exploration of new experimental methods through collaboration with our
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predictive capability. The work will explore the key processes variables and their interlink with the underlying alloys and will also require micro-mechanical and corrosion-fatigue testing to demonstrate