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About the project: Machine learning accelerated Inverse Design of Graphene Nanoribbons for Green Energy Supervisor: Dr Sara Sangtarash, University of Warwick Thermoelectric materials convert heat
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There exists an inherent variability in how lithium-ion batteries fail – an event commonly referred to as “thermal runway”. This uncertainty drives additional cost and complexity into the design and
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stacking error and removes the options for easy disassembly for repair, replace or recycle. In this project modification of the cell end cap design is to be investigated through FE analysis, prototype build
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. Substantial thermal and insulation margins are maintained, leaving the full potential of SSTs far from maximised and impeding the broader rollout of the technology. This project focuses on the design, multi
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routes to “designer” composites for sensing, manufacturing and resilient infrastructure. Advanced polymer composites underpin lightweight transport, renewable energy technologies and next‑generation
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) software using PyTorch, making the tools immediately accessible to the wider scientific community. The student will work across the University of Warwick (WMG) and the Harwell Science and Innovation Campus
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processing using a state-or-the-art Gleeble HDS-V40 to test the materials behaviour to stress and recrystallisation kinetics at temperatures around 1400C. Alloy development to understand / design how
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on the design and modelling of ultra-high voltage IGBTs, thyristors, and SiC devices for HVDC and energy systems. Embedded within the EPSRC Rewire network, the project strengthens UK capability in high-voltage
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physics-based and data-driven methods to support the design and scale-up of these systems. This approach will reduce the need for costly experiments, improve scale-up predictions, and provide confidence
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, you will pioneer new routes to “designer” composites for sensing, manufacturing and resilient infrastructure. Advanced polymer composites underpin lightweight transport, renewable energy technologies