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Active control of supersonic impingement tones using steady and pulsed microjets

机译:使用稳定和脉冲微喷射器主动控制超音速撞击音

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摘要

In recent years, it has been demonstrated that direct microjet injection into the shear layer of the main jet disrupts the feedback loop inherent in high speed impinging jet flows, thereby significantly reducing the adverse effects. The amount of noise reduced by microjet actuation is known to be dependent on nozzle operating conditions. In this paper, two active control strategies using microjets are suggested to maintain a uniform, reliable, and optimal reduction of these tones over the entire range of operating conditions. In the first method, a quasi-closed loop control strategy is proposed using steady microjet injection and the proper orthogonal decomposition (POD) algorithm. The most energetic spatial mode of the unsteady pressure along the nozzle diameter is captured using the POD, which in turn is used to determine the distribution of microjet intensity along the nozzle exit. Preliminary experimental results from a STOVL supersonic jet facility at Mach 1.5 show that the quasi-closed loop control strategy, in some cases, provides an additional 8–10 dB reduction compared to axisymmetric injection at the desired operating conditions. The second method consists of a pulsed microjet injection, motivated by the need to further improve the noise suppression. It was observed that the pulsed microjet was able to bring about the same noise reduction as steady injection using approximately 40% of the corresponding mass flow rate of the steady microjet case. Moreover, as the duty cycle increased, the performance of pulsed injection was further enhanced and was observed to completely eliminate the impinging tones at all operating conditions.
机译:近年来,已经证明直接将微射流注入主射流的剪切层会破坏高速撞击射流中固有的反馈回路,从而显着减少不利影响。已知通过微射流致动而降低的噪声量取决于喷嘴的工作条件。在本文中,提出了两种使用微喷的主动控制策略,以在整个工作条件范围内保持这些音调的均匀,可靠和最佳降低。在第一种方法中,提出了使用稳定的微喷射注入和适当的正交分解(POD)算法的准闭环控制策略。使用POD捕获沿喷嘴直径的非恒定压力的最有力的空间模式,该POD进而用于确定沿喷嘴出口的微射流强度分布。 STOVL超音速喷气机在1.5马赫时的初步实验结果表明,在所需的工作条件下,与轴对称喷射相比,准闭环控制策略在某些情况下还可以降低8-10 dB。第二种方法包括脉冲微喷射注入,其原因是需要进一步改善噪声抑制。观察到,使用稳定的微喷射器壳体的相应质量流量的大约40%,脉冲微喷射器能够实现与稳定的喷射相同的降噪效果。此外,随着占空比的增加,脉冲注入的性能进一步增强,并且在所有工作条件下均可观察到完全消除了撞击声。

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  • 来源
    《Experiments in Fluids》 |2006年第6期|841-855|共15页
  • 作者单位

    Department of Mechanical Engineering Massachusetts Institute of Technology Room 3-441 77 Massachusetts Ave Cambridge MA 02139-4307 USA;

    Department of Mechanical Engineering Massachusetts Institute of Technology Room 3-441 77 Massachusetts Ave Cambridge MA 02139-4307 USA;

    Department of Mechanical Engineering FAMU - FSU College of Engineering 2525 Pottsdamer Street Rm229 Tallahassee FL 32310 USA;

    Department of Mechanical Engineering FAMU - FSU College of Engineering 2525 Pottsdamer Street Rm229 Tallahassee FL 32310 USA;

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