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首页> 外文期刊>Journal of Sound and Vibration >Measurements and computational fluid dynamics predictions of the acoustic impedance of orifices
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Measurements and computational fluid dynamics predictions of the acoustic impedance of orifices

机译:孔口声阻抗的测量和流体动力学预测

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摘要

The response of orifices to incident acoustic waves, which is important for many engineering applications, is investigated with an approach combining both experimental measurements and numerical simulations. This paper presents experimental data on acoustic impedance of orifices, which is subsequently used for validation of a numerical technique developed for the purpose of predicting the acoustic response of a range of geometries with moderate computational cost. Measurements are conducted for orifices with length to diameter ratios, L/D, of 0.5, 5 and 10. The experimental data is obtained for a range of frequencies using a configuration in which a mean (or bias) flow passes from a duct through the test orifices before issuing into a plenum. Acoustic waves are provided by a sound generator on the upstream side of the orifices. Computational fluid dynamics (CFD) calculations of the same configuration have also been performed. These have been undertaken using an unsteady Reynolds averaged Navier-Stokes (URANS) approach with a pressure based compressible formulation with appropriate characteristic based boundary conditions to simulate the correct acoustic behaviour at the boundaries. The CFD predictions are in very good agreement with the experimental data, predicting the correct trend with both frequency and orifice L/D in a way not seen with analytical models. The CFD was also able to successfully predict a negative resistance, and hence a reflection coefficient greater than unity for the L/D =0.5 case. (C) 2015 The Authors. Published by Elsevier Ltd.
机译:孔口对入射声波的响应(对于许多工程应用而言很重要)已通过结合实验测量和数值模拟的方法进行了研究。本文介绍了有关孔口声阻抗的实验数据,随后将这些数据用于验证开发的一种数值技术,该数值技术旨在以适度的计算成本来预测一系列几何形状的声学响应。对长度/直径比L / D为0.5、5和10的孔进行测量。使用配置的平均频率(或偏置)流量从管道通过管道,获得了一系列频率的实验数据。发出充气室之前测试孔口。在孔的上游侧,由声音发生器提供声波。相同配置的计算流体动力学(CFD)计算也已执行。这些已使用非稳态雷诺平均Navier-Stokes(URANS)方法和基于压力的可压缩配方以及适当的基于特征的边界条件进行了模拟,以模拟边界处的正确声学行为。 CFD的预测与实验数据非常吻合,以频率和节流孔L / D预测正确的趋势,而这是分析模型所看不到的。 CFD还能够成功预测负电阻,因此对于L / D = 0.5情况,反射系数大于1。 (C)2015作者。由Elsevier Ltd.发布

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