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Effect of back cavity configuration on performance of elastic panel acoustic liner with grazing flow

机译:背腔配置对胶带流动弹性面板声学衬里性能的影响

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This paper reports a comprehensive numerical study of noise mitigation performance of elastic panel liner comprising an elastic panel and a cavity beneath exposed to low Mach number grazing flow. A time-domain direct aeroacoustic simulation (DAS) seamlessly coupled with panel dynamics is adopted for its least assumptions taken on duct flow unsteadiness and acoustical behaviors so that both linear and nonlinear aeroacoustic-structural interactions of the problem can be fully explored. The numerical method is well validated with theoretical and experimental works on a liner with thick cavity reported in literature. The noise mitigation of liner with various combinations of cavity depth, panel length and cavity shape, are explored and the present numerical results show that back cavity configuration plays an important role in the liner problem. A decomposition method is applied to DAS acoustic solutions for uncovering the role of aeroacoustically induced panel vibration. The nonlinear effect due to aeroacoustic-structural interaction is found to be of secondary importance. Extensive cross spectral analyses between duct aeroacoustics and panel vibration reveal that the overall liner performance is largely determined by the liner elastic panel whose aeroacoustic and vibration responses are greatly modified by the variations of back cavity acoustics of the back cavity with different shapes. Based on these understandings a new configuration with acoustic absorption materials placed on a cavity wall is proposed. Detailed analysis of its numerical results shows that the introduction of acoustic absorption effectively relieves the cavity acoustics and modifies the panel responses in such a way that an enhanced liner mitigation performance over a broadband can be achieved. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文对低马赫数掠流下由弹性板和下腔组成的弹性板衬垫的降噪性能进行了全面的数值研究。采用与面板动力学无缝耦合的时域直接气动声学模拟(DAS),对管道流动的不稳定性和声学行为进行了最少的假设,以便充分探讨问题的线性和非线性气动声学-结构相互作用。在文献报道的厚腔缸套上进行的理论和实验工作都很好地验证了该数值方法。研究了空腔深度、壁板长度和空腔形状的不同组合对衬垫噪声的抑制作用,目前的数值结果表明,后空腔结构在衬垫问题中起着重要作用。将分解方法应用于DAS声学解决方案,以揭示气动声学诱发的面板振动的作用。气动声学-结构相互作用引起的非线性效应是次要的。管道气动声学和壁板振动之间的广泛互谱分析表明,整体衬垫性能在很大程度上取决于衬垫弹性壁板,其气动声学和振动响应因不同形状的后腔的后腔声学变化而大大改变。基于这些认识,提出了一种在空腔壁上放置吸声材料的新结构。对其数值结果的详细分析表明,声吸收的引入有效地缓解了空腔声学,并修改了面板的响应,从而在宽带上实现了增强的线性衰减性能。(C) 2020爱思唯尔有限公司版权所有。

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