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Phase-Field Fracture Modelling for Lifetime Assessment of Thermal Barrier Coatings

Lead Research Organisation: Loughborough University
Department Name: Aeronautical and Automotive Engineering

Abstract

Gas turbines are widely used to generate electricity and to propel aircraft. Increasingly scarce resources, the need to remain competitive, and climate change are driving the UK's energy market and its aerospace industry to demand efficiency, reliability and emissions reduction. Being heat engines, the gas temperature at the entry to the turbine is required to be as high as possible to maximise efficiency, and consequently, metallic components in this part of the engine are coated in thermal barrier coatings (TBCs) to protect them from melting. Further increases in gas turbine efficiency, reliability and emissions reduction absolutely necessitate further improvements to TBCs. Optimised TBCs would allow significantly higher gas temperatures to increase efficiency and will be more durable. Part of the barrier to optimising TBCs is that a complete mechanistic understanding of TBC failure has not yet been achieved. Such an understanding would facilitate timely maintenance, avoid unplanned down time, and underpin and direct development of new optimised TBC material systems. This PhD research will develop the phase field method for interface fracture mechanics to study cracking in thin films, and blister nucleation and spallation of multi-layer TBCs. Perhaps the most attractive characteristic of phase-field approaches to fracture is that crack initiation and crack paths are automatically obtained from a minimization problem that couples the elastic and fracture energies. As such, it is expected to be a powerful tool to investigate this research challenge. Experimental work may also be completed, with the results used to test the validity of predictions.

Publications

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Studentship Projects

Project Reference Relationship Related To Start End Student Name
EP/R513088/1 30/09/2018 29/09/2023
2787426 Studentship EP/R513088/1 01/01/2023 29/06/2026 Christopher Fear
EP/W524487/1 30/09/2022 29/09/2028
2787426 Studentship EP/W524487/1 01/01/2023 29/06/2026 Christopher Fear