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Control of a Transonic Shock in a Serpentine Diffuser using Surface Fluidic Actuation

机译:使用表面流体驱动控制蛇形扩散器中的跨音速冲击

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The total pressure losses and distortion in a serpentine diffuser over a range of flow rates that result in the formation of a transonic shock at the diffuser's first convex turn are alleviated using fluidic-based flow control. The present investigations show that the shock strength is highest at the diffuser's spanwise corners and has a local minimum at midspan. Flow distortions above the diffuser's convex bottom surface are induced by two counter-rotating streamwise vortices that originate at each corner and strengthen as a result of interaction of the corner flow with the shock. These vortices are controlled indirectly by manipulation of the shock using a spanwise array of fluidic oscillating jets that are integrated into the diffuser moldline upstream of the shock. It is shown that along with changing the shock footprint topology, flow control displaces the streamwise vortex pair farther apart and thereby diminishes the cooperative advection of a low momentum fluid from the wall region into the core flow. Consequently, the average circumferential distortion parameter is reduced by 35%, while the total pressure recovery increases by about 1%. These findings indicate that diffuser flow rates higher than the nominal operating condition, which are typically limited by shock losses, can be enabled by active flow control.
机译:使用基于流体的流量控制,可以缓解在一定流量范围内蛇形扩散器的总压力损失和变形,从而导致在扩散器的第一凸弯处形成跨音速冲击。目前的研究表明,在扩散器的翼展角处的冲击强度最高,而在中跨处的冲击强度最低。扩散器凸形底面上方的流动变形是由两个反向旋转的涡流引起的,这些涡流起源于每个拐角,并由于拐角流与激波的相互作用而增强。这些涡流是通过使用跨度排列的流体振荡射流通过对冲击进行操纵来间接控制的,这些射流在射流上游集成到扩散器模具线中。结果表明,随着冲击波足迹拓扑的改变,流动控制使沿流方向的涡流对移动得更远,从而减少了低动量流体从壁区域进入核心流的协同对流。因此,平均周向变形参数降低了35%,而总压力恢复提高了约1%。这些发现表明,主动流量控制可以实现高于标称运行条件的扩散器流量,该流量通常受到冲击损失的限制。

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