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Flow control using continuous fluidic vortex generators. Validation of a simple CFD model of the interaction between a boundary layer and an inclined jet

机译:使用连续流体涡流发生器进行流量控制。边界层和倾斜射流相互作用的简单CFD模型的验证

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Flow control using vortex generators has been proven to be quite efficient. For mechanical VG, a simple model (referred as BAY model) was developed by Bender et al, and implemented into the ONERA RAINS software elsA. For fluidic VG, the interaction process involves numerous parameters. In addition, a full simulation of this interaction requires the definition of a specific mesh. The use of chimera technique may help when the geometry is fixed. However, for design purpose, this solution is very costly when a row of VG has to be simulated, and the influence of chordwise location, hole diameter, spanwise spacing and blowing rate have to be investigated. In order to reduce the number of parameters and to select the most important ones, a first parametrical study of the interaction of a flat plate boundary layer and a single fluidic VG has been undertaken. Afterwards, a more detailed investigation of the remaining parameters allowed proposing a definition of an "equivalent" BAY model producing the same effects as the fluidic VG on the downstream flow. Validation of this model was performed for a 2D flow on a flat plate, for a 2D transonic airfoil, and for a 3D infinite swept wing transonic configuration.
机译:事实证明,使用涡流发生器进行流量控制非常有效。对于机械VG,Bender等人开发了一个简单的模型(称为BAY模型),并将其实现到ONERA RAINS软件elsA中。对于流体VG,相互作用过程涉及许多参数。此外,要对此交互进行完整的模拟,需要定义特定的网格。固定几何形状时,使用嵌合体技术可能会有所帮助。但是,出于设计目的,当必须模拟一排VG时,此解决方案非常昂贵,并且必须研究弦向位置,孔直径,翼展方向间距和吹气速度的影响。为了减少参数的数量并选择最重要的参数,已经对平板边界层和单个流体VG的相互作用进行了首次参数研究。之后,对剩余参数的更详细研究允许提出“等效” BAY模型的定义,该模型产生与流体VG对下游流动相同的效果。对平板上的2D流动,2D跨音速翼型和3D无限扫掠翼跨音速配置进行了此模型的验证。

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