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Role of Polymeric Coating on Metallic Foams to Control the Aeroacoustic Noise Reduction of Airfoils with Permeable Trailing Edges

机译:金属泡沫上的聚合物涂层在控制具有可渗透后缘的翼型的航空声降噪中的作用

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摘要

Studies on porous trailing edges, manufactured with open-cell Ni-Cr-Al foams with sub-millimeter pore sizes, have shown encouraging results for the mitigation of turbulent boundary-layer trailing-edge noise. However, the achieved noise mitigation is typically dependent upon the pore geometry, which is fixed after manufacturing. In this study, a step to control the aeroacoustics effect of such porous trailing edges is taken, by applying a polymeric coating onto the internal foam structure. Using this method, the internal topology of the foam is maintained, but its permeability is significantly affected. This study opens a new possibility of aeroacoustic control, since the polymeric coatings are temperature responsive, and their thickness can be controlled inside the foam. Porous metallic foams with pore sizes of 580, 800, and 1200 μm are (internally) spray-coated with an elastomeric coating. The uncoated and coated foams are characterized in terms of reduced porosity, average coating thickness and air-flow resistance. Subsequently, the coated and uncoated foams are employed to construct tapered inserts installed at the trailing edge of an NACA 0018 airfoil. The noise mitigation performances of the coated metal foams are compared to those of uncoated metal foams with either similar pore size or permeability value, and both are compared to the solid trailing edge reference case. Results show that that the permeability of the foam can be easily altered by the application of an internal coating on the metallic foams. The noise reduction characteristics of the coated foams are similar to equivalent ones with metallic materials, provided that the coating material is rigid enough not to plastically deform under flow conditions.
机译:用具有亚毫米孔径的开孔Ni-Cr-Al泡沫制造的多孔后缘的研究显示出减轻湍流边界层后缘噪声的令人鼓舞的结果。然而,所获得的噪声减轻通常取决于孔的几何形状,该孔的几何形状在制造之后是固定的。在这项研究中,通过在内部泡沫结构上施加聚合物涂层,采取了控制此类多孔后缘的空气声学效果的步骤。使用这种方法,可以保持泡沫的内部拓扑结构,但是其渗透性会受到显着影响。这项研究为航空声学控制开辟了新的可能性,因为聚合物涂层具有温度响应性,并且可以在泡沫内部控制其厚度。孔径为580、800和1200μm的多孔金属泡沫(内部)喷涂有弹性体涂层。未涂覆和涂覆的泡沫的特征在于降低的孔隙率,平均涂覆厚度和抗气流性。随后,将涂覆的和未涂覆的泡沫用于构造安装在NACA 0018机翼后缘的锥形插件。将涂覆的金属泡沫的消音性能与孔径或渗透率值相似的未涂覆的金属泡沫的消音性能进行了比较,并与固体后缘参考情况进行了比较。结果表明,通过在金属泡沫上施加内涂层,可以容易地改变泡沫的渗透性。涂层泡沫的降噪特性与金属材料的等效降噪特性相似,但前提是涂层材料必须足够坚硬,不会在流动条件下发生塑性变形。

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