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Experimental and Numerical Investigation of Controlled Flow Distortion in a Subsonic Offset Diffuser by Trapped Vorticity

机译:血管血管血管偏移扩散器中控制流动变形的实验性和数值研究

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Controlled concentrations of trapped vorticity within a recess in the moldline of an offset subsonic (M<0.7) diffuser are explored for active suppression of flow distortions in joint experimental/numerical inveatigations. The coupling between the trapped vorticity that models inherent flow separation and the global secondary counter-rotating streamwise vortices that give rise to flow distrotions is manipulated using a spanwise array of fluidic oscillating jets that are distributed across the diffuser span just upstream of the trapped vortex. The actuation modifies the topology of critical (saddle and node) points of the trapped vortex and thereby has a profound effect on the structure of the secondary flow. It is shown that optimal interactions of the actuation with the trapped vortex can lead to full suppression of the central vortex pair and redistribute the residual vorticity along the diffuser's corners. These structural changes result in significant reduction of flow distortion by about 68% (measured by the average circumferential distortion parameter) at actuation mass flow rate that is only 0.25% of the diffuser mass flow rate.
机译:探讨了偏移子系统(M <0.7)扩散器的凹陷中的凹陷内的被捕获的涡度的受控浓度用于主动抑制关节实验/数值偏离的流动失真。捕获的涡流与模型固有流分离的耦合和全局次级反向旋转的流动涡流导致流动分散的流动涡流被使用跨越流体振荡喷射器的跨度阵列进行操纵,该振荡喷射在被捕获的涡旋的上游的漫射跨度上分布。该致动改变了被捕获的涡流的临界(鞍座和节点)点的拓扑,从而对二次流动的结构具有深远的影响。结果表明,与捕获的涡流的致动的最佳相互作用可能导致中央涡旋对的完全抑制,并重新分配沿扩散角的角落的残余涡度。这些结构变化导致在致动质量流量下的致动质量流速下的大约68%(通过平均周向变形参数测量)显着降低,该致动质量流量仅为漫射器质量流量的0.25%。

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