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together three scientific disciplines. Combined, they reinforce each other and are the driving force behind the technology we all use in our daily lives. Technology such as the electricity grid, which our
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adopts a qualitative exploratory research approach involving longitudinal case studies and participatory action research (PAR) in a set of use cases with energy community projects ranging from smart grid
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on intelligent energy network research, including: demand management and flexibility, digital twinning, data analytics, smart grid ICT architectures and systems integration in multi energy systems. The latter
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in collaboration with leading industry partners. Information Batteries are central to the sustainable energy transition, powering electric vehicles and improving grid utilization. Unlocking their full
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grid, which our faculty is helping to make completely sustainable and future-proof. At the same time, we are developing the chips and sensors of the future, whilst also setting the foundations
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(DCE&S) Photovoltaic Materials and Devices (PVMD) Intelligent Electrical Power Grids (IEPG) High Voltage Technologies (HVT) The Electrical Sustainable Energy Department provides expertise in each
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integrated energy systems, including correlations between energy grids, uncertainties and simultaneous peak loads. In this project, Digital pathways for accelerating collective decision making of energy
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energy network research, including: demand management and flexibility, digital twinning, data analytics, smart grid ICT architectures and systems integration in multi energy systems. The latter specializes
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and are the driving force behind the technology we all use in our daily lives. Technology such as the electricity grid, which our faculty is helping to make completely sustainable and future-proof. At
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electric vehicles and allowing for better utilization of the electricity grid. Yet, unlocking the full potential of batteries requires a deeper understanding of how battery modules need to be designed and