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and embrittlement by precisely optimizing additive manufacturing parameters. By combining experimental investigations, advanced microstructural analyses, and numerical simulations, a novel manufacturing
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microstructure exhibiting improved physical and mechanical properties. The main objective of this project will be to develop a mechanistic understating of the microstructural evolution of the Additive
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microstructure exhibiting improved physical and mechanical properties. The main objective of this project will be to develop a mechanistic understating of the microstructural evolution of the Additive
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compared with existing alloys. The properties of this alloy depend on careful control of the microstructure, in particular the second phase particles and recrystallization. The project aims to understand
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on the thermomechanical performance of W/V joints via these methods. Understanding the link between microstructure and properties is crucial for process optimisation and design integration. Project Scope: This PhD will
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microstructure, residual stress, and distortion of the deposited parts, all of which significantly impact their mechanical properties and overall performance. Consequently, accurately determining and effectively
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. The temperature field generated by the interaction between the arc and the material plays a critical role in determining the microstructure, residual stress, and distortion of the built parts—all of which
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PhD candidate to work on the microstructural characterization of nickel-based alloys used in the manufacture of turbine wheels. The PhD candidate will work on the microstructural characterization
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(Dr Jun Jiang) (2) In-situ formability, microstructure analysis and forming process optimization (Prof Li-Liang Wang) (3) Crystal plasticity modelling to understand how microstructural features caused
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largely missing in the fusion community. The Project: This PhD project will evaluate the effect of high temperature, irradiation, high-heat flux and thermo-mechanical stress on microstructural, physical and