Department: None
Organisation: The University of Manchester
A CCP on Wave/Structure Interaction: CCP-WSI
Advanced Nuclear Materials
Advanced ceramics from liquid feedstock for aerospace propulsion
Advanced fibre-based energy storage for wearable applications
Building New Capability in Structural Ceramics
CCP-WSI+ Collaborative Computational Project on Wave Structure Interaction +
DEMAND: Dynamics of Energy, Mobility and Demand
Developing Superconducting Fault Current Limiters (SFCLs) for Distributed Electric Propulsion Aircraft
Fibre Reinforced Thermoplastic Tape Development Cell
Fundamental Properties of Thoria Based Mixed Oxides
HABIT - Crystal Morphology from Crystallographic and Growth Environmental Factors
High Temperature Zirconium Alloys for Nuclear Fusion and Generation IV Fission Reactors
Improving Methods of Characterising Resource, Interactions and Conditions (METRIC)
Inline virtual qualification from 3D X-ray imaging for high-value manufacturing
Innovation in the Design of Improved Actinide Selective Extractants Suitable for use in Large Scale Spent Nuclear Fuel Reprocessing
Layered Materials Research Foundry
Monitoring the integrity of engineering infrastructure non-destructively
Multifunctional III-nitride materials
Multiscale modelling of shelly carbonate sands for foundation design of offshore structures (MuMShell)
New Frontiers in Aerosol Particle Measurements
New Nuclear Manufacturing (NNUMAN)
Novel GaN Power Devices and Packaging Technologies for 300 degC Ambient Operation
Optoelectronic properties of hybrid metal halide perovskites: from nanoscale to devices
Particles At eXascale on High Performance Computers (PAX-HPC)
Smart Cities in the Making: Learning from Milton Keynes
Supergen Energy Networks hub 2018
The Chemistry of the Uranium-Nitride Triple Bond
Towards Zero Emissions Electric Aircraft through Superconducting DC Distribution Network
UKAEA / EPSRC Fusion Grant 2022/27
Uranium-Ligand Multiple Bonds: From Molecules to Materials
Vitrified nuclear waste durability in complex natural environments
enabling Sixty Years creep-fatigue life of the NExt generation nuclear Reactors 'SYNERgy'
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