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Assessment of two fluidic actuators for active flow control on a one-sided diffuser

机译:在单面扩散器上进行两个流体致动器的评估

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The manipulated flow along a one-sided diffuser is investigated experimentally by means of particle image velocimetry and wall pressure measurements. Two fluidic actuators are considered: a fluidic diverter emitting two alternately pulsed jets and a fluidic oscillator generating one spatially oscillating jet. Active separation control is performed with these devices to suppress the pressure-induced separation bubble present in the uncontrolled flow field. The method of proper orthogonal decomposition is employed to identify inherent physical mechanisms subject to varied jet emission angles as well as actuation intensities and construct a reduced order model by utilizing modal coefficients to obtain phase information regarding the periodic actuation process. As a main result, we show that longitudinal vortex structures determining the separation control capability, are more distinct for the fluidic oscillator. Furthermore, the flow fields manipulated by both actuators at a low momentum input are dominated by a spatial mode resembling the base flow. However, this feature is suppressed by the fluidic diverter at greater velocity ratios, whereas the variation of actuation intensity does not yield significant alterations to the spatial modes observed for the fluidic oscillator.
机译:通过颗粒图像速度测速和壁压测量实验研究沿着单面扩散器的操纵流动。考虑两个流体致动器:流体转向器发射两个交替脉冲的喷射器和流体振荡器产生一个空间振荡射流。利用这些装置进行有源分离控制,以抑制不受控制的流场中存在的压力诱导的分离气泡。采用适当的正交分解方法来识别经受变化的射流发射角度的固有物理机制以及致动强度,并通过利用模态系数来构造减少的订单模型,以获得关于周期性致动过程的相位信息。作为主要结果,我们表明,确定分离控制能力的纵向涡旋结构更为不同,对流体振荡器更加不同。此外,两个致动器在低动量输入处操纵的流场由类似于基本流的空间模式主导。然而,该特征在更大的速度比下由流体转向抑制,而致动强度的变化不会产生对流体振荡器观察到的空间模式的显着改变。

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