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Study on the Flow and Acoustic Characteristics of Submerged Exhaust Through a Lobed Nozzle

机译:漏气喷嘴对淹没式尾气的流动和声学特性的影响

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Submerged exhaust noise is a significant contributor to the acoustic signature of submerged equipment using thermal power engines. Recently, it has been shown that the structure of a submerged exhaust nozzle has a great impact on the radiated noise levels. However, what kind of structure can effectively reduce the noise and how it works are still being studied. This paper investigates the influence of the lobed structure on the submerged gas jets. The submerged exhaust gas signatures are examined using a round nozzle and a lobed nozzle at gas flow rates from low to high (30 - 210m(3)/h). Hydrophones are used to measure the sound pressure emitted from the gas jet. A high frequency pressure transmitter is applied to reveal the effect of the lobed structure on the pressure fluctuations in the upstream pipeline. A high-speed digital video camera serves to examine the gas behavior near the nozzle exit. The sound pressure, pressure and image signals are synchronized using an originally designed synchronous system. The experiment results demonstrate that low frequency (less than 1000 Hz) sounds and pressure fluctuations always dominant the spectrum in a submerged exhaust process. These strong sounds and pressure fluctuations are closely associated with the jet contractions. Gas exhausted from the lobed nozzle would smoothly flow along the lobed edge, and have a smaller jet width than that from the round nozzle in the downstream area. The Strouhal number would also be reduced by the lobed nozzle, which means that gas exhausted from the lobed nozzle is less obstructed. Therefore, the lobed nozzle would not only reduce the low frequency sounds associated with the jet contraction (reduce 3.3-8.6 dB), but also significantly reduce the pressure fluctuations in the upstream pipeline.
机译:淹没的排气噪声是导致使用热力发动机的淹没设备的声学特征的重要因素。最近,已经显示出浸没式排气喷嘴的结构对辐射噪声水平具有很大的影响。但是,仍在研究哪种结构可以有效地降低噪声以及如何工作。本文研究了叶片结构对浸没式气体射流的影响。使用圆形喷嘴和带凸角的喷嘴以低至高(30-210m(3)/ h)的气体流量检查浸没的废气特征。水听器用于测量从气体喷口发出的声压。应用高频压力变送器来揭示叶片结构对上游管道压力波动的影响。高速数码摄像机用于检查喷嘴出口附近的气体行为。声压,压力和图像信号使用最初设计的同步系统进行同步。实验结果表明,低频(小于1000 Hz)的声音和压力波动在浸没式排气过程中始终占主导地位。这些强烈的声音和压力波动与射流收缩密切相关。从叶状喷嘴排出的气体将沿着叶状边缘顺畅地流动,并且其射流宽度比在下游区域的圆形喷嘴的射流宽度小。带凸角的喷嘴也会减少斯特劳哈尔数,这意味着从凸角的喷嘴排出的气体受阻较小。因此,带凸角的喷嘴不仅会减少与射流收缩相关的低频声音(减少3.3-8.6 dB),而且还会大大减少上游管道中的压力波动。

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