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Development of Polyimide Foam for Aircraft Sidewall Applications

机译:用于飞机侧壁应用的聚酰亚胺泡沫的开发

摘要

In this paper, the use of polyimide foam as a lining in double panel applications is considered. It is being investigated here as a replacement for aircraft grade glass fiber and has a number of attractive functional attributes, not the least of which is its high fire resistance. The test configuration studied here consisted of two 1mm (0.04 in.) thick, flat aluminum panels separated by 12.7 cm (5.0 in.) with a 7.6 cm (3.0 in.) thick layer of foam centered in that space. Random incidence transmission loss measurements were conducted on this buildup, and conventional poro-elastic models were used to predict the performance of the lining material. Results from two densities of foam are considered. The Biot parameters of the foam were determined by a combination of direct measurement (for density, flow resistivity and Young s modulus) and inverse characterization procedures (for porosity, tortuosity, viscous and thermal characteristic length, Poisson s ratio and loss factor). The inverse characterization procedure involved matching normal incidence standing wave tube measurements of absorption coefficient and transmission loss of the isolated foam with finite element predictions. When the foam parameters determined in this way were used to predict the performance of the complete double panel system, reasonable agreement was obtained between the measured transmission loss and predictions made using a commercial statistical energy analysis code.
机译:本文考虑了在双面板应用中使用聚酰亚胺泡沫作为衬里。本文正在研究它作为飞机级玻璃纤维的替代品,并具有许多吸引人的功能特性,其中最重要的就是其高耐火性。此处研究的测试配置由两块1mm(0.04英寸)厚的扁平铝板组成,两块铝箔板之间相隔12.7厘米(5.0英寸),中间有7.6厘米(3.0英寸)厚的泡沫层。在此堆积物上进行随机入射传输损耗测量,并使用传统的孔隙弹性模型预测衬里材料的性能。考虑了两种密度的泡沫的结果。泡沫的比奥参数是通过直接测量(对于密度,流动阻力和杨氏模量)和逆表征程序(对于孔隙率,曲折度,粘性和热特性长度,泊松比和损耗因子)的组合来确定的。逆表征过程包括将法向入射驻波管对孤立泡沫的吸收系数和传输损耗的测量结果与有限元预测值进行匹配。当将以此方式确定的泡沫参数用于预测整个双面板系统的性能时,在测得的传输损耗与使用商业统计能量分析代码进行的预测之间会获得合理的一致性。

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