Investigation of a Passive Flow Control Device in an S-Duct Inlet at High Subsonic Flow

Courtney Rider, Asad Asghar, W. Allan, G. Ingram, R. Stowe, R. Pimentel
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引用次数: 1

Abstract

This paper reports the investigation of a flow control strategy for an S-duct diffusers. The method incorporates stream-wise tubercles, and aims to enhance the performance of S-duct inlets by reducing the size and intensity of separated flow. These devices, bioinspired from humpback whale flippers’ leading edge protuberances, have been shown to be effective in increasing post-stall coefficients of lift of airfoils. In S-duct diffusers, the presence of convex curvature next to the separated region provides an ideal location for the installation of a tubercle-like device. The flow control effectiveness was evaluated by test-rig measurements and computational fluid dynamics (CFD) simulations of the flow in an S-duct at high subsonic flow conditions (Ma = 0.80). The S-ducts were rapid prototyped in plastic using 3D printing. Static surface pressure along the length and total pressure at the exit revealed pressure recovery, total pressure loss, swirl, and the nature of flow distortion at the S-duct exit. CFD simulations used ANSYS FLUENT with a RANS solver closed with the RKE turbulence model. The CFD simulation compared well with the test-rig data and provided useful information on flow mechanism and for understanding flow features. The performance of the baseline and variant with the flow control device was compared and flow control strategy was evaluated.
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高亚音速条件下s型导管进气道被动流动控制装置的研究
本文报道了s型导管扩散器流动控制策略的研究。该方法采用了流向结核,旨在通过减小分离流的大小和强度来提高s管进口的性能。这些装置,生物灵感来自座头鲸的鳍前缘突起,已被证明是有效的增加失速后升力系数的翼型。在s管扩散器中,靠近分离区域的凸曲率的存在为安装结核状装置提供了理想的位置。在高亚音速流动条件下(Ma = 0.80),通过试验台测量和计算流体动力学(CFD)模拟s型导管内的流动来评估流动控制效果。s型导管使用3D打印技术在塑料中快速制作原型。沿长度方向的静表面压力和出口处的总压揭示了s型导管出口处的压力恢复、总压损失、旋流和流动畸变的性质。CFD仿真采用ANSYS FLUENT,采用RKE湍流模型封闭的RANS求解器。CFD模拟结果与试验台数据对比良好,为了解流动机理和流动特征提供了有用的信息。比较了带流量控制装置的基准和变型的性能,并对流量控制策略进行了评价。
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