Sort by
Refine Your Search
- 
                
                
                engineering wake models to mesoscale simulations with wind-farm parametrisation, when predicting wake effects and thus annual energy production. The student will improve current models used by industry such as 
- 
                
                
                variables directly. This simplification makes it a promising candidate for performing quantum computational fluid dynamics, and will be the primary focus of this project. Applicants should have a 1st or high 
- 
                
                
                partnership with the Royce Institute and Cummins, you will study the microstructure of nickel-based alloys used in turbine wheels — vital components for hydrogen-ready engines and future power technologies 
- 
                
                
                traditional cell boundaries. This architecture offers improved coverage, user fairness, and spectral efficiency, making it crucial for applications such as autonomous transportation, smart cities, industrial 
- 
                
                
                transition to a circular economy. A minimum of an upper second-class Honours degree (or equivalent) in Chemical Engineering, Mechanical Engineering, Industrial Engineering, Operations Research, or a related 
- 
                
                
                should have, or expect to achieve, at least a 2.1 honours degree or a master’s (or international equivalent) in a relevant science or engineering related discipline. To apply, please contact 
- 
                
                
                for over a century, the fundamental physio-chemical processes governing tree initiation and propagation remain inadequately understood, representing a significant scientific and engineering challenge 
- 
                
                
                offshore operating conditions remains limited, making it a key area for further research. The combined effects of electrical, thermal, mechanical, and environmental stresses, coupled with high humidity, salt 
- 
                
                
                materials interact with the body. This project addresses that gap by engineering a 3D-printed full-thickness skin model that mimics the aging microenvironment, enabling more predictive evaluation of novel 
- 
                
                
                application. Applicants should have, or expect to achieve, at least a 2.1 honours degree or a master’s (or international equivalent) in a relevant science or engineering related discipline.