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Furthermore, the kinematics of the arm and hand during the underwater stroke is highly unsteady [2].
These flows feature 3D highly unsteady turbulent phenomena combined with combustion processes.
The well-known problem is the highly unsteady and vortical flow structure developing downstream of the body.
In this separation region, the flow is highly unsteady and reattachment takes place intermittently at varying locations.
Typically the effect of tail oscillation on fluid flow around such a body is highly unsteady, generating vortices and requiring detailed analysis of fluid-structure interactions.
It is found that the flow around the bogie is highly unsteady due to strong flow separations and flow interactions developed there.
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The analysis of large-scale vortices from highly refined unsteady simulations becomes challenging as the mesh resolution increases.
The open wings exhibit highly nonlinear unsteady aerodynamic characteristics; they also stall earlier and have higher drag values than the closed wings.
In this downsized version, all lengths have been reduced by a given factor to allow for conducting highly resolved unsteady simulations of NO reduction units featuring complex geometries, with turbulent flow convection over lengths of more than 10 m.
From these highly-resolved unsteady simulations, a scenario is drawn to explain the cyclic time evolution of the structure of the unsteady turbulent flame base, in direct relation with its fluctuating streamwise position.
These results illustrate the highly turbulent and unsteady nature of flow on the sides of the cube.
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