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Numerical Studies of a Supersonic Fluidic Diverter Actuator for Flow Control

机译:超音速分流器流量控制的数值研究。

摘要

The analysis of the internal flow structure and performance of a specific fluidic diverter actuator, previously studied by time-dependent numerical computations for subsonic flow, is extended to include operation with supersonic actuator exit velocities. The understanding will aid in the development of fluidic diverters with minimum pressure losses and advanced designs of flow control actuators. The self-induced oscillatory behavior of the flow is successfully predicted and the calculated oscillation frequencies with respect to flow rate have excellent agreement with our experimental measurements. The oscillation frequency increases with Mach number, but its dependence on flow rate changes from subsonic to transonic to supersonic regimes. The delay time for the initiation of oscillations depends on the flow rate and the acoustic speed in the gaseous medium for subsonic flow, but is unaffected by the flow rate for supersonic conditions
机译:以前通过对次音速流进行时变数值计算研究的特定流体换向执行器的内部流动结构和性能分析已扩展到包括超音速执行器出口速度的操作。这种理解将有助于以最小的压力损失和流量控制执行器的先进设计开发流体分流器。流的自感应振荡行为已被成功预测,并且所计算出的相对于流速的振荡频率与我们的实验测量值具有极好的一致性。振荡频率随马赫数的增加而增加,但其对流速的依赖性从亚音速到跨音速再到超音速。引发振荡的延迟时间取决于亚音速流动的气态介质中的流速和声速,但不受超音速条件下流速的影响

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