Acoustic Attenuation Prediction of Perforated Reactive and Dissipative Mufflers With Flow by Using Frequency-Domain Linearized Navier-Stokes Equations

Zhirong He, Zhenlin Ji, Hongpu Huang
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Abstract

To comprehensively consider the impact of complex airflow on sound propagation, a numerical approach by solving the three-dimensional (3-D) frequency-domain linearized Navier-Stokes equations (LNSEs) is proposed to accurately predict the transmission losses of perforated tube reactive and dissipative mufflers in the presence of complex airflow. The numerical computations are performed in two steps: (1) solve the time averaged flow by steady-state computational fluid dynamics (CFD) simulation and then map the results into acoustic mesh; (2) treat sound-absorbing material as an equivalent fluid and obtain acoustic perturbation variables by solving the frequency-domain LNSEs. The transmission losses of perforated tube reactive and dissipative mufflers are measured in the presence of flow and compared with the numerical predictions. The excellent consistencies between predictions and measurements validate the present approach. The influence of Mach number on acoustic attenuation performance of perforated tube reactive and dissipative mufflers is then investigated. With Mach number increases, the transmission loss of perforated tube reactive muffler increases somewhat, while the transmission loss of dissipative mufflers decreases obviously in the lower frequency range and change is limited at higher frequencies.
利用频域线性化纳维-斯托克斯方程预测带流穿孔反应式和耗散式消声器的声衰减
为了全面考虑复杂气流对声音传播的影响,提出了一种通过求解三维(3-D)频域线性化纳维-斯托克斯方程(LNSE)的数值方法,以准确预测存在复杂气流时穿孔管反应式和耗散式消声器的传播损失。数值计算分两步进行:(1) 通过稳态计算流体动力学(CFD)仿真求解时间平均流,然后将结果映射到声学网格;(2) 将吸声材料视为等效流体,通过求解频域 LNSE 获得声学扰动变量。测量了穿孔管反应型消声器和耗散型消声器在流动情况下的传输损耗,并与数值预测结果进行了比较。预测值和测量值之间的出色一致性验证了本方法。然后研究了马赫数对穿孔管反应式和耗散式消声器声学衰减性能的影响。随着马赫数的增加,穿孔管反应式消声器的传输损耗有所增加,而耗散式消声器的传输损耗在较低频率范围内明显下降,在较高频率下变化有限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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