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Sound transmission through panels and shells filled with porous material in the presence of external flow

机译:在外部流动的情况下,通过面板和壳体的声音传输充满多孔材料

摘要

With increasingly tighter regulations on noise exposure during flight, aircraft designers have been compelled to innovate structures that minimise noise transmission into the cabin space. Porous material is widely used as a passive noise control medium because of their light weight, low cost, and broad band sound abatement effectiveness. The present work, inspired by the need to be able to predict noise transmission characteristics for commonly used constructions, incorporates the effect of flow into the calculations. Three types of sandwich configurations {bonded-bonded, bonded-unbonded and unbonded-unbonded{ are considered. Biot's theory is used to simulate the poroelastic material. The sound transmission though a double-walled panel lined with porous material in the presence of external mean flow is considered, first. The transmission loss is found to increase with increasing Mach number of the external mean flow. This is then explained on the basis that external mean flow increases the impedance of the panel. Mismatch in the characteristic acoustic impedances of the exterior and the interior results in the change of transmission loss. Transmission loss increases gradually when the pressure difference between air gap and that in the exterior decreases. A bi-objective optimization study is carried out to simultaneously minimize the sound transmission and the structural weight. The effect of laminated composite face plate in the structure is also brought out. Sound transmission through a system of double shells, lined with poroelastic material in the presence of external mean flow, is studied next. The transmission characteristics of the sandwich construction are presented for different incidence angles and Mach numbers over a wide frequency range. It is noted that the transmission loss exhibits three dips on the frequency axis as opposed to flat panels where there are only two such frequencies. Results are discussed in the light of these observations. Flow is shown to decrease the transmission loss below the ring frequency, but to increase this above the ring frequency due to the reduction of stiffness and the damping effect added by the flow. Finally, sound transmission through double-walled cylindrical shell lined with poroelastic material in the core excited by the exterior pressure fluctuation due to the turbulent boundary layer is investigated. The peaks of power spectral density of the inner shell kinetic energy due to shell resonance, hydrodynamic coincidence and acoustic coincidence are discussed. The results show that if the high frequency is interested, an air gap, even if very thin, between the two face shells provide superior sound insulation.
机译:随着对飞行过程中噪声暴露的法规越来越严格,飞机设计师被迫进行创新,以最大程度地减少噪声向机舱空间的传播。多孔材料由于其重量轻,成本低和宽带消音效果而被广泛用作无源噪声控制介质。由于需要能够预测常用结构的噪声传输特性,因此本工作将流动的影响纳入了计算。考虑了三种类型的夹心结构{粘结-粘结,粘结-未粘结和未粘结-未粘结{。 Biot理论被用来模拟多孔弹性材料。首先考虑在存在外部平均流的情况下穿过衬有多孔材料的双壁面板的声音传输。发现传输损耗随着外部平均流量的马赫数的增加而增加。然后根据外部平均流量会增加面板的阻抗来进行解释。外部和内部的特征声阻抗不匹配会导致传输损耗的变化。当气隙与外部之间的压力差减小时,传输损耗逐渐增加。进行了双目标优化研究,以同时最小化声音传输和结构重量。还发挥了层压复合面板在结构中的作用。接下来研究在外部平均流的情况下,通过双壳系统(衬有多孔弹性材料)的声音传输。在宽的频率范围内,针对不同的入射角和马赫数,给出了三明治结构的传输特性。注意,与只有两个这样的频率的平板相反,传输损耗在频率轴上表现出三个下降。根据这些观察结果讨论了结果。流动被显示为在环频率以下降低了传输损耗,但是由于刚度的降低和流动所带来的阻尼作用而将其增加到环频率以上。最后,研究了由湍流边界层引起的外部压力波动激发的芯内衬有多孔弹性材料的双壁圆柱壳内的声传输。讨论了由于壳层共振,流体动力巧合和声学巧合引起的内壳动能功率谱密度的峰值。结果表明,如果对高频感兴趣,则两个面壳之间的气隙(即使很薄)也可以提供出色的隔音效果。

著录项

  • 作者

    Zhou Jie;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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