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This model is operated in three parallel flow situations: horizontal, vertical opposed and vertical adding flow.
One thing will remain the same in the preceding two flow situations, namely, streamline.
The results may also be useful in interpreting similar features encountered in more complicated flow situations.
Using different flow situations and sensor arrays the sensitivity of the method was evaluated.
This suggests that it is an appropriate coefficient for flow over a ventilated hydrofoil and possibly other flow situations.
A modified Reynolds number is developed based on an equivalent diameter including characteristic parameters of the flow situations under consideration.
The added mass coefficient C is calculated for dispersed particles in different flow situations using the CFD simulations.
The physical model behind the simulation and typical results obtained in some two-phase gas liquid flow situations are presented.
Besides, future studies could focus on more elaborate particle shape representation in the DEM model to enable to prediction of critical flow situations, such as blocking.
Comparisons between computed and measured blade loading show the adequacy of the proposed method to predict instantaneous loading of wind turbines during coaxial transient flow situations.
The focus is on the original hydrological surface and subsurface connectivity of the river-floodplain systems related to different flow situations.
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