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SUBSONIC JET NOISE REDUCTION BY MICROJETS - A PARAMETRIC STUDY

机译:微喷降低亚音速射流噪声的参数研究

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The effect of injecting tiny secondary jets (μjets') on the radiated noise from a subsonic primary jet is studied experimentally. The Wets are injected on to the primary jet near the nozzle exit with variable port geometry, working fluid and driving pressure. A clear reduction in the overall sound pressure level in the direction of peak noise radiation is observed that improves with increasing μjet pressure. It is found that smaller diameter ports with higher driving pressure, but involving less thrust and mass fraction, can produce better noise reduction. A collection of data from the present as well as past experiments is examined in an attempt to correlate the noise reduction with the operating parameters. The results indicate that the OASPL reduction, as monitored at a shallow angle, correlates with the ratio of μjet to primary jet driving pressures normalized by the ratio of corresponding diameters (pμd/piD). With gaseous injection, the spectral amplitudes decrease at lower frequencies while an increase is noted at higher frequencies. The amplitude 'crossover' is thought to be at least partly due to shock-associated noise from the underexpanded Wets themselves. Such crossover is not seen with water injection apparently because the flow in that case is incompressible and there is no shock-associated noise. Centerline velocity data show that larger noise reduction is accompanied by faster jet decay as well as significant reduction in turbulence intensities. While a physical understanding of the dependence of the noise reduction on p_μd/p_jD remains unclear, given this correlation, an analysis explains the observed dependence of the effect on various other parameters.
机译:实验研究了注入微小的次级射流(μjets)对亚音速初级射流辐射噪声的影响。湿气以可变的端口几何形状,工作流体和驱动压力注入到喷嘴出口附近的主喷嘴上。观察到在峰值噪声辐射方向上总体声压级明显降低,随着μjet压强的提高而提高。发现直径较小的端口具有较高的驱动压力,但涉及的推力和质量分数较小,可以产生更好的降噪效果。检查了来自当前和过去实验的数据收集,以试图将降噪与运行参数相关联。结果表明,OASPL减小(如在浅角处监视)与通过相应直径之比(pμd/ piD)归一化的μjet与主喷嘴驱动压力之比相关。对于气体注入,频谱幅度在较低频率下会降低,而在较高频率下会有所增加。振幅“交叉”被认为至少部分是由于膨胀不足的湿自身的冲击相关噪声引起的。显然在注水时看不到这种交叉,因为在这种情况下,流动是不可压缩的,并且没有震动相关的噪音。中心线速度数据显示,较大的降噪效果会伴随着更快的射流衰减以及湍流强度的显着降低。尽管尚不清楚对降噪对p_μd/ p_jD的依赖性的物理理解,但鉴于这种相关性,一项分析解释了观察到的对各种其他参数影响的依赖性。

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