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Prediction of Breakout Noise from Acoustically Lagged Rectangular HVAC Ducts

机译:声学滞后矩形HVAC管道的突围噪声预测

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摘要

Heating, ventilation and air-conditioning (HVAC) ducts are often lagged on the outside of the duct wall with a highly porous material, covered in turn with a thin impervious jacket. This arrangement is used to provide thermal insulation as well as the breakout noise reduction. In this paper, a prediction method based on the four-pole parameters is discussed to evaluate the lagged duct performance in terms of the breakout noise reduction in the plane-wave frequency range. Transfer matrix of the inner and outer duct walls in the transverse direction is calculated using the wall admittance as a function of the axial wave number. Assuming a common axial wave number ensures coupling between the acoustic waves and structural waves. It is a function of the wall admittance. Considerable difference between common axial wave number and the air acoustic wave number is observed near the coupling frequency region of the duct wall. The overall transfer matrix is developed in order to relate the inside plane wave pressure to the outer acoustic particle velocity. This is combined with the radiation impedance of the duct to predict the transverse transmission loss. Net Insertion loss of the lagged duct is calculated using the difference of the transverse transmission loss of the lagged duct and the corresponding bare duct. Predicted values of the insertion loss are compared with the measured values from literature. Finally, results of parametric studies are presented.
机译:加热,通风和空调(HVAC)管道通常用高度多孔的材料滞后于管道壁的外侧,然后用薄的不透水外套覆盖。该布置用于提供隔热以及降低突发噪声。本文讨论了一种基于四极点参数的预测方法,以根据平面波频率范围内的突降噪声来评估滞后管道的性能。使用壁的导纳与轴向波数的函数来计算内部和外部管道壁在横向上的传递矩阵。假设共有的轴向波数可确保声波与结构波之间的耦合。它是壁导纳的函数。在导管壁的耦合频率区域附近,可以看到共同轴向波数和空气声波数之间的相当大的差异。为了将内部平面波压力与外部声粒子速度相关联,开发了总传递矩阵。这与管道的辐射阻抗相结合以预测横向传输损耗。滞后导管的净插入损耗是通过使用滞后导管与相应裸导管的横向传输损耗之差来计算的。将插入损耗的预测值与文献中的测量值进行比较。最后,介绍了参数研究的结果。

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  • 来源
    《Building acoustics》 |2009年第4期|313-328|共16页
  • 作者单位

    Global Research, General Electric, Bangalore, India;

    Facility for Research in Technical Acoustics (FRITA), Department of Mechanical Engineering, Indian Institute of Science, Bangalore 560 012, India;

    Global Research, General Electric, Bangalore, India;

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