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- Delft University of Technology (TU Delft)
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systems still face major challenges when operating in fluid environments such as air or water. Unlike ground robots, aerial and underwater robots exhibit dynamics that are strongly coupled with
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protonuclei that position genes, polymerases and enzymes with molecular precision - running and quantifying transcription inside them, following RNA production and condensate dynamics by confocal microscopy and
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fluid dynamics is an advantage. Additional Information Benefits A flying start to your career in scientific research, with the opportunity to obtain a PhD degree. Plenty of room for your drive to shape
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Inria, the French national research institute for the digital sciences | Talence, Aquitaine | France | about 2 months ago
locomanipulation demonstrations will validate the prototype performance on two applications: outdoor high-speed galloping and flying-object catching. Where to apply Website https://jobs.inria.fr/public/classic/en
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For the efficient and safe deployment of flying (marine) drones, Ship-Unmanned Aircraft System Operational Limitations (SHUASOL) must be determined. These SHUASOLs are strongly influenced by the wind
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(including additional funding to complete the cycle). -Flexible work dynamics. -Possibility to extend the duration for the contract. Eligibility criteria https://www.upm.es/Investigacion/HRS4R/HRS4R/Seleccion
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knowledge for a better world. You will find more information about working at NTNU and the application process here. About the position This PhD project is connected to FME NorthWind (https
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an aerodynamic bird collision avoidance model, combining computational fluid dynamics (CFD) of the flow around wind turbines with the aerodynamic characteristics of flying birds to predict collision risk. This
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to operate in a scalable and decentralized manner while achieving obstacle avoidance using onboard sensing and adapting to changes in dynamic environments. In parallel to the theoretical and algorithmic
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industry and the public sector to study how intelligence emerges from the interaction between body, computation, and environment, across flying, ground, and aquatic robot configurations. Our mission is to