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Enhanced modal matching method for macro- and micro-perforated plates

机译:宏观和微穿孔板的增强模态匹配方法

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Theoretical, numerical and experimental results are presented on the reactive and dissipative properties of backed or unbacked multilayer partitions made up of macro-or micro perforated rigid panels in linear regime. The objective is to provide an enhanced multi modal (EMM) formulation that accounts for high-order modes within the panel holes as well as visco-thermal boundary layers (VTBLs) over the panel surfaces while being computationally more efficient than the finite element method (FEM). The proposed model accounts for oblique incidence and finite-sized panel vibrations. Validation cases show that the EMM well captures the visco-thermal dissipation modelled by FEM on rigidly-backed macro-and micro-perforates. It also well correlates with a number of effective impedance models provided suitable end-corrections are used. The measured acoustical properties of unbacked multi-layer partitions are accurately predicted by the EMM, well beyond the validity range of the effective models. The thickness-to-hole diameter aspect ratio is found to be a key parameter that determines the relative contribution of the in-hole radial modes and VTBLs to the partition dissipation properties. For aspect ratios greater than unity where micro-perforates normally are operated, the dissipation is dominated by the high order in-hole modes. Otherwise, both the VTBLs and in-hole modes contribute to the transmission and dissipation. The VTBLs also dominate the reactive and dissipative properties of acoustic fishnets embedding small air gaps comparable to the VTBL thickness. Despite the constant hole pitch limitation, the EMM appears to be well-suited for the optimisation study of the dissipative and reactive properties of backed or unbacked multi-layer partitions.
机译:本文给出了由大孔或微孔刚性板组成的有背或无背多层隔墙在线性状态下的反应和耗散特性的理论、数值和实验结果。其目的是提供一种增强的多模态(EMM)公式,该公式可以解释面板孔内的高阶模态以及面板表面上的粘热边界层(VTBL),同时计算效率比有限元法(FEM)更高。提出的模型考虑了斜入射和有限尺寸的面板振动。验证案例表明,EMM能够很好地捕捉到由有限元模拟的刚性支撑宏观和微观穿孔的粘热耗散。如果使用适当的端部修正,它也与许多有效阻抗模型有很好的相关性。EMM准确预测了无支撑多层隔墙的实测声学特性,远远超出了有效模型的有效范围。发现厚度与孔径纵横比是决定孔内径向模和VTBL对分区耗散特性相对贡献的关键参数。对于通常操作微穿孔的宽高比大于1的情况,耗散主要由高阶孔内模式控制。另外,VTBL和孔内模式都有助于传输和耗散。VTBL还主导了嵌入与VTBL厚度相当的小气隙的声鱼网的反应和耗散特性。尽管存在恒定的空穴间距限制,EMM似乎非常适合对有背衬或无背衬多层隔墙的耗散和反应性能进行优化研究。

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