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has on the space-time geometry. The aim of the project is to explore the backreaction of quantum fields on black hole space-times. First, the stress-energy tensor for a chosen quantum field is computed
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aims to develop a high-fidelity modelling framework to predict key thermal hydraulic parameters for boiling flows within complex geometries at high heat flux conditions, relevant to the engineering
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for fusion components. This framework foresees two building blocks: high-fidelity Computational Fluid Dynamics (CFD) simulations of boiling flows within complex geometry using opensource software and cutting
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accepted all year round Details Many theories of quantum gravity agree that the spacetime geometry of Einstein’s general relativity needs to be replaced by a different underlying structure. In particular
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to the use of chopped fibres, but can flow to form complicated geometry when compression moulded at pressures, allowing mechanical properties to be compensated through intelligent topological designs
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, the space-time geometry is fixed and classical, while the matter is quantized (and described by a quantum field). In this project the background space-time is a charged Reissner-Nordstrom black hole, and the
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Application Deadline: 15 January 2026 Details This PhD project explores deep connections between quantum field theory (QFT), geometry, and black hole physics through the lens of holography. Using exact methods
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Application Deadline: 15 January 2026 Details This PhD project explores deep connections between quantum field theory (QFT), geometry, and black hole physics through the lens of holography. Using exact methods
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bridges, masonry architectures, metal shells, and more. Prerequisite Knowledge: Good knowledge in mechanics, mathematics, and programming. Familiarity with computational geometry and parametric modelling is
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for aerodynamic sound sources, sound propagation in atmosphere and effect of the reflection from the ground. We will investigate and quantify the critical role of turbine blade geometry and blade