17 postdoc-in-thermal-network-of-the-physical-building PhD positions at University of Exeter
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influence the flow of thermal energy, generating clean electricity from waste heat, building advanced batteries that bring us closer to realising a truly sustainable green energy network, then this
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phase of electronic neural networks is highly power-intensive, and their widespread use puts ever-increasing pressure on global energy infrastructure [1]. Photonic circuits guide and process light-based
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investment yet in the vibrant and strategically important field of Metamaterials research. Explore a career and grow your experience of research and professional life in and around the Physical Sciences with
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investment yet in the vibrant and strategically important field of Metamaterials research. Explore a career and grow your experience of research and professional life in and around the Physical Sciences with
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decisions with auditable decision logs, and reusable software modules suitable for utility integration. Research objectives Build and validate physics-informed graph surrogate models for sewer network states
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on fluorinated polymers, limited thermal stability, and performance degradation under low humidity or elevated temperature conditions. These challenges restrict system efficiency, durability, and long-term
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, thermal, electromagnetic or kinetic), are critical for the sustainable operation of wireless IoT devices and remote sensors. The world can reduce reliance on batteries and fossil-fuel-derived power if more
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socioeconomic outcomes, including self-reported health status, prevalence of chronic disease, mental wellbeing, physical activity levels, income, deprivation, educational attainment, vehicle ownership, and
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, networking and sensing. Photonic integrated circuits (PICs) are the optical equivalents of electronic chips. Microscopic waveguides guide light across a chip to perform a multitude of functions — at the speed
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, addressing engineering questions in how future electricity networks can remain stable and resilient as renewable generation grows. Grid-forming (GFM) control is increasingly recognised as a critical enabling