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Fraser, S., Nikora, V., Williamson, B. J. & Scott, B. E. Hydrodynamic impacts of a marine renewable energy installation on the benthic boundary layer in a tidal channel.
We perform a global receptivity and sensitivity analysis of a swept-wing, incompressible boundary layer in a domain covering the attachment line as well as an extended region downstream of it.
We aim to generate an artificially thickened boundary layer in a wind tunnel with properties similar to the neutral atmospheric boundary layer.
The flow above a wall-mounted hemisphere is used for generating hairpin vortices in a laminar boundary layer in a controlled way.
A model with several original physical and numerical features has been developed for direct numerical and large eddy simulations of a turbulent boundary layer in a stratified fluid.
This flow pattern will contribute to maintain the thermal stratification and retard the water temperature rise and the dissipation of the thermal boundary layer in a pool boiling with a horizontal heat source installed asymmetrically.
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Particularly, the buoyancy effects on the structure of turbulent boundary layers in a wide range of stability conditions were studied.
This paper presents recent direct experimental verification obtained by measuring the boundary layers in a large-scale nozzle model across a wide range of Re.
In this study, first wind tunnel experiments were conducted to generate both unstable and stable turbulent thermal boundary layers in a thermally stratified wind tunnel at Tokyo Polytechnic University.
This paper presents a study of heat transfer coefficients of boundary layers in a laboratory-scale rectangular cross-flow flat-sheet membrane module by using distilled water vacuum membrane distillation (VMD) experiments.
The simultaneous transient developing mass and momentum boundary layers in a moving-wall (Stefan) problem resulting from the flow of a fluid through a channel with dissolving walls is determined.
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