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Validation of a Polyimide Foam Model for Use in Transmission Loss Applications

机译:用于传输损耗应用的聚酰亚胺泡沫模型的验证

摘要

The work described in this paper was focused on the use of a new polyimide foam in a double wall sound transmission loss application. Recall that polyimide foams are functionally attractive, compared to polyurethane foams, for example, owing to their fire resistance. The foam considered here was found to have a flow resistivity that was too high for conventional acoustical applications, and as a result, it was processed by partial crushing to lower the flow resistivity into an acceptable range. Procedures for measuring the flow resistivity and Young s modulus of the material have been described, as was an inverse characterization procedure for estimating the remaining Biot parameters based on standing wave tube measurements of transmission loss and absorption coefficient. The inverse characterization was performed using a finite element model implementation of the Biot poro-elastic material theory. Those parameters were then used to predict the sound transmission loss of a double panel system lined with polyimide foam, and the predictions were compared with full-scale transmission loss measurements. The agreement between the two was reasonable, especially in the high and low frequency limits; however, it was found that the SEA model resulted in an under-prediction of the transmission loss in the mid-frequency range. Nonetheless, it was concluded that the performance of polyimide foam could be predicted using conventional poro-elastic material models and that polyimide foam may offer an attractive alternative to other double wall linings in certain situations: e.g., when fire resistance is a key issue. Future work will concentrate on reducing the density of the foam to values similar to those used in current aircraft sidewall treatments, and developing procedures to improve the performance of the foam in transmission loss applications.
机译:本文所述的工作重点是在双层壁传声损耗应用中使用新型聚酰亚胺泡沫。回想一下,例如聚酰亚胺泡沫由于具有耐火性而与聚氨酯泡沫相比在功能上具有吸引力。发现这里考虑的泡沫的流动电阻率对于常规的声学应用而言太高,结果,通过部分压碎将其加工以将流动电阻率降低到可接受的范围内。已经描述了用于测量材料的流动电阻率和杨氏模量的程序,以及用于基于传输损耗和吸收系数的驻波管测量来估计剩余的Biot参数的逆表征程序。使用Biot孔隙弹性材料理论的有限元模型实现方法进行了逆表征。然后将这些参数用于预测衬有聚酰亚胺泡沫的双面板系统的传声损耗,并将这些预测值与满量程传输损耗测量值进行比较。两者之间的协议是合理的,尤其是在高频和低频范围内;但是,发现SEA模型导致对中频范围内的传输损耗的预测不足。然而,得出的结论是,可以使用常规的多孔弹性材料模型来预测聚酰亚胺泡沫的性能,并且在某些情况下,例如,当耐火性是一个关键问题时,聚酰亚胺泡沫可以为其他双壁衬里提供有吸引力的替代方案。未来的工作将集中在将泡沫的密度降低到与当前飞机侧壁处理中使用的密度相似的水平,并开发程序以改善泡沫在传输损耗应用中的性能。

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