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Elucidating the Sound Absorption Characteristics of Foxtail Millet (

机译:阐明Foxtail Millet的吸音特性(

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摘要

The current study deals with the analysis of sound absorption characteristics of foxtail millet husk powder. Noise is one the most persistent pollutants which has to be dealt seriously. Foxtail millet is a small seeded cereal cultivated across the world and its husk is less explored for its utilization in polymer composites. The husk is the outer protective covering of the seed, rich in silica and lingo-cellulose content making it suitable for sound insulation. The acoustic characterization is done for treated foxtail millet husk powder and polypropylene composite panels. The physical parameters like fiber mass content, density, and thickness of the composite panel were varied and their influence over sound absorption was mapped. The influence of porosity, airflow resistance, and tortuosity was also studied. The experimental result shows that 30-mm thick foxtail millet husk powder composite panel with 40% fiber mass content, 320 kg/m3 density showed promising sound absorption for sound frequency range above 1000 Hz. We achieved noise reduction coefficient (NRC) value of 0.54. In view to improve the performance of the panel in low-frequency range, we studied the efficiency of incorporating air gap and rigid backing material to the designed panel. We used foxtail millet husk powder panel of density 850 kg/m3 as rigid backing material with varying air gap thickness. Thus the composite of 320 kg/m3 density, 30-mm thick when provided with 35-mm air gap and backing material improved the composite’s performance in sound frequency range 250 Hz to 1000 Hz. The overall sound absorption performance was improved and the NRC value and average sound absorption coefficient (SAC) were increased to 0.7 and 0.63 respectively comparable with the commercial acoustic panels made out of the synthetic fibers. We have calculated the sound absorption coefficient values using Delany and Bezlay model (D&B model) and Johnson–Champoux–Allard model (JCA model) and compared them with the measured sound absorption values.
机译:目前的研究涉及福克斯米壳粉末的吸音特性分析。噪音是最持久的污染物,必须认真对待。 Foxtail Millet是全世界栽培的小粮食,其稻壳较少探讨其在聚合物复合材料中的利用。壳体是种子的外保护覆盖物,富含二氧化硅和环纤维素含量,使其适合隔音。对处理的粪码小米壳粉和聚丙烯复合板进行了声​​学表征。改变了复合板的纤维质量含量,密度和厚度等物理参数,并映射了它们对吸声的影响。还研究了孔隙率,气流抗性和抗腐害的影响。实验结果表明,具有40%纤维质量含量的30毫米厚的粪便小米壳粉末复合面板,320kg / m3密度显示出对1000Hz以上的声频范围的有希望的吸声吸收。我们实现了降噪系数(NRC)值为0.54。为了提高低频范围内面板的性能,我们研究了将气隙和刚性背衬材料掺入设计面板的效率。我们使用了密度850 kg / m3的Foxtail小米壳粉板作为刚性背衬材料,气隙厚度不同。因此,当提供35mm气隙和背衬材料时,320kg / m3密度,30mm厚的复合材料,并将复合材料在声频范围为250Hz至1000Hz。整体吸声性能得到改善,并且NRC值和平均吸声系数(SAC)分别与合成纤维制成的商业声学板相比分别增加至0.7和0.63。我们已经使用Delany和Bezlay模型(D&B Model)和Johnson-Champoux-Allard模型(JCA模型)计算了声音吸收系数值,并将其与测量的吸声值进行了比较。

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