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Computational modelling of the HyperVapotron cooling technique
Joseph Milnes
, Alan Burns
,
Dimitris Drikakis
Department of Engineering
United Kingdom Atomic Energy Authority
University of Leeds
ANSYS, Inc.
Department of Engineering Physics
Cranfield University
Research output
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peer-review
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Keyphrases
Computational Modeling
100%
Cooling Method
100%
Hypervapotron
100%
Design Improvement
40%
High Heat Flux Devices
40%
Steady State
20%
Performance Prediction
20%
Model Choice
20%
Power Plant
20%
Heat Flux
20%
Customization
20%
Engineering Model
20%
Heat Transfer
20%
Multiphase Model
20%
Near-wall
20%
Turbulence Model
20%
Reynolds-averaged Navier-Stokes
20%
Computational Fluid Dynamics Software
20%
Grid Resolution
20%
Virtual Prototyping
20%
Exceptional Performance
20%
Transfer Technology
20%
Heat Transfer Mechanism
20%
Experimental Reactor
20%
Fusion Reactor
20%
Internal Heat Transfer
20%
Fin Heat Transfer
20%
Magnetic Fusion
20%
Heat Transfer Rate
20%
Experimental Future
20%
Boiling Heat Transfer
20%
Fusion Research
20%
Internal Fins
20%
Water Cooling
20%
Physics
Boiling
100%
Earth
50%
Heat Transfer
50%
Nuclear Reactor
50%
Engineering
Heat Transfer
33%
Chemical Engineering
Heat Transfer
33%