Pressure Equalization Method for Passive Flow Control of an S-Duct Intake for High Subsonic Speeds

Asad Asghar, Stephen A. Pym, W. Allan, M. Laviolette, R. Stowe
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Abstract

High subsonic aircraft with fuselage-embedded engines often employ inlet ducts with multiple bends in order to induct ambient air into the propulsion system while also diffusing it to engine-acceptable Mach numbers. Engine performance, stability margin, and safety of the integrated aircraft-engine system can be negatively affected by separated, swirling and distorted flow that often characterizes S-ducts. This paper reports the investigation of a flow control strategy aimed at the improvement of the aerodynamic performance of S-duct diffusers. Passive pressure equalization was employed to reduce the size and intensity of the separated flow downstream of curved duct sections, utilizing naturally occurring pressure differences. Characteristic secondary flows promote instability and contribute to flow separation and losses in the inner radius region of a duct bend. In the present scheme, boundary layer flow upstream of the separation point on the inner radius of the first bend is energized by re-injecting higher momentum air, drawn from the higher pressure region at the outer radius of the same bend. The flow control effectiveness of this passive pressure equalization was evaluated by test-rig measurements of the flow in an S-duct at an inlet Mach number of 0.80. Static surface pressure was measured along the length of the S-duct and the total pressure was measured at the aerodynamic interface plane using a pressure rake with five high performance pressure transducers. It was possible to reveal pressure recovery, total pressure loss, and the general nature of flow distortion at the AIP.
高亚音速进气道被动流量控制的压力均衡方法
采用机身嵌入式发动机的高亚音速飞机通常采用带有多个弯道的进气道,以便将周围空气引入推进系统,同时将其扩散到发动机可接受的马赫数。s型风管的分离、旋流和畸变流会对发动机性能、稳定余量和集成飞机发动机系统的安全性产生负面影响。本文研究了一种改善s型导管扩压器气动性能的流动控制策略。利用自然产生的压力差,采用被动压力均衡来减小弯曲管道段下游分离流的大小和强度。特征的二次流促进了不稳定性,并导致了管道弯道内半径区域的流动分离和损失。在本方案中,第一弯道内半径上分离点上游的边界层流动通过从同一弯道外半径的高压区域再注入高动量空气来获得动力。通过试验台对进气道马赫数为0.80时s型导管内流动的测量,评估了这种被动压力均衡的流动控制效果。采用带5个高性能压力传感器的压力耙,沿s型风管长度方向测量静表面压力,在气动界面平面处测量总压力。它可以显示AIP的压力恢复、总压损失和流动畸变的一般性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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