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Fundamental Properties of Fluidic Oscillators for Flow Control Applications

机译:用于流量控制应用的流体振荡器的基本特性

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摘要

The presented work provides a technical summary of the fundamental time-resolved properties of a spatially oscillating jet emitted by a fluidic oscillator. The discussion focuses on experiments involving a fluidic oscillator with two feedback channels. Although limited to the fundamental properties, the discussions throughout the paper are frequently directed at the use of fluidic oscillators for flow control applications, which is accompanied by numerous suggestions for future research activities. The internal flow field reveals the oscillation mechanism that is based on flow guided through the feedback channels to feed into a recirculation bubble. The bubble grows and pushes the jet to the opposite side. Scaling parameters are introduced that govern the oscillation frequency for different oscillator sizes and working fluids. The external flow field within a quiescent environment visualizes the jet's sweeping motion. A head vortex is formed repetitively. The jet's properties (e.g., jet velocity, jet depth, and entrainment) change throughout one oscillation cycle. The jet velocity decays much more rapidly than for a steady jet, which is accompanied by a significant increase in jet depth. These observations are consistent with the finding that the jet entrainment is at least four times higher than for a steady jet. Furthermore, the jet forces are assessed from the flow field data. When a single oscillating jet interacts with a crossflow over a flat plate, pockets of streamwise vorticity are formed and convected downstream. Depending on Strouhal number, the streamwise vortices alternate gradually or in an almost bi-modal manner.
机译:提出的工作提供了由流体振荡器发射的空间振荡射流的基本时间分辨特性的技术总结。讨论集中在涉及具有两个反馈通道的流体振荡器的实验上。尽管限于基本特性,但本文中的讨论经常针对流体振荡器在流量控制应用中的使用,并伴随着对未来研究活动的众多建议。内部流场揭示了一种振荡机制,该机制基于通过反馈通道引导并馈入再循环气泡的流量。气泡长大,并将射流推向相反的一侧。引入缩放参数,这些参数控制着不同振荡器尺寸和工作流体的振荡频率。静态环境中的外部流场可视化了喷嘴的横扫运动。反复形成头涡。在一个振荡周期中,喷嘴的特性(例如,喷嘴速度,喷嘴深度和夹带)改变。射流速度的衰减比稳定射流快得多,伴随着射流深度的显着增加。这些观察结果与射流夹带比稳定射流至少高四倍的发现是一致的。此外,根据流场数据评估喷射力。当单个振荡射流与平板上的横流相互作用时,会形成流动涡流并在下游对流。取决于斯特劳哈尔数,沿流的涡流逐渐或以几乎双峰的方式交替。

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  • 来源
    《AIAA Journal》 |2019年第3期|978-992|共15页
  • 作者单位

    Tech Univ Berlin, Hermann Fottinger Inst, Muller Breslau Str 8, D-10623 Berlin, Germany;

    Tech Univ Berlin, Hermann Fottinger Inst, Muller Breslau Str 8, D-10623 Berlin, Germany;

    Tech Univ Berlin, Hermann Fottinger Inst, Muller Breslau Str 8, D-10623 Berlin, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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