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Experimental Study of a Nozzle Using Fluidic Counterflow for Thrust Vectoring

机译:利用流体逆流进行喷嘴推力矢量化的实验研究

摘要

A static experimental investigation of a counterflow thrust vectoring nozzle concept was performed. The study was conducted in the NASA Langley Research Center Jet Exit Test Facility. Internal performance characteristics were defined over a nozzle pressure ratio (jet total to ambient) range of 3.5 to 10.0. The effects of suction collar geometry and suction slot height on nozzle performance were examined. In the counterflow concept, thrust vectoring is achieved by applying a vacuum to a slot adjacent to a primary jet that is shrouded by a suction collar. Two flow phenomena work to vector the primary jet depending upon the test conditions and configuration. In one case, the vacuum source creates a secondary reverse flowing stream near the primary jet. The shear layers between the two counterflowing streams mix and entrain mass from the surrounding fluid. The presence of the collar inhibits mass entrainment and the flow near the collar accelerates, causing a drop in pressure on the collar. The second case works similarly except that the vacuum is not powerful enough to create a counterflowing stream and instead a coflowing stream is present. The primary jet is vectored if suction is applied asymmetrically on the top or bottom of the jet.
机译:进行了逆流推力矢量喷嘴概念的静态实验研究。该研究是在美国宇航局兰利研究中心的喷气出口测试设施中进行的。内部性能特性是在3.5至10.0的喷嘴压力比(射流与环境的总压力)范围内定义的。检查了吸环几何形状和吸槽高度对喷嘴性能的影响。在逆流概念中,推力矢量是通过对与主喷嘴相邻的狭槽施加真空来实现的,该主喷嘴被吸气环所覆盖。根据测试条件和配置,有两种流动现象可以引导主喷流。在一种情况下,真空源在初级射流附近产生次级反向流动流。两种逆流之间的剪切层混合并从周围的流体中夹带质量。套环的存在抑制了质量夹带,并且套环附近的流动加速,导致套环上的压力下降。第二种情况类似地工作,除了真空不足以产生逆流流而存在同流流。如果在喷嘴的顶部或底部不对称地施加吸力,则将对主喷嘴进行矢量控制。

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    Flamm Jeffrey D.;

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  • 年度 1998
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