Innovation in Aircraft Cabin Interior Panels Part I: Technical Assessment on Replacing the Honeycomb with Structural Foams and Evaluation of Optimal Curing of Prepreg Fiberglass

被引:8
作者
Franco-Urquiza, Edgar Adrian [1 ]
Dollinger, Annika [2 ]
Torres-Arellano, Mauricio [3 ]
Piedra, Saul [1 ]
Alcantara Llanas, Perla Itzel [3 ]
Renteria-Rodriguez, Victoria [3 ]
Zarate Perez, Cecilia [3 ]
机构
[1] Natl Council Sci & Technol CONACYT CIDESI, Ctr Engn & Ind Dev, Carretera Estatal 200,Km 23, Queretaro 76265, Mexico
[2] Univ Appl Sci, Inst Aviat, Dept Engn, FH JOANNEUM GmbH, A-8020 Graz, Austria
[3] Ctr Engn & Ind Dev CIDESI, Carretera Estatal 200,Km 23, Queretaro 76265, Mexico
关键词
aircraft cabin interior panels; optimal curing of prepregs; foams; non-structural composite panels; COMPOSITES;
D O I
10.3390/polym13193207
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Sandwich composites are widely used in the manufacture of aircraft cabin interior panels for commercial aircraft, mainly due to the light weight of the composites and their high strength-to-weight ratio. Panels are used for floors, ceilings, kitchen walls, cabinets, seats, and cabin dividers. The honeycomb core of the panels is a very light structure that provides high rigidity, which is considerably increased with fiberglass face sheets. The panels are manufactured using the compression molding process, where the honeycomb core is crushed up to the desired thickness. The crushed core breaks fiberglass face sheets and causes other damage, so the panel must be reworked. Some damage is associated with excessive build-up of resin in localized areas, incomplete curing of the pre-impregnated fiberglass during the manufacturing process, and excessive temperature or residence time during the compression molding. This work evaluates the feasibility of using rigid polyurethane foams as a substitute for the honeycomb core. The thermal and viscoelastic behavior of the cured prepreg fiberglass under different manufacturing conditions is studied. The first part of this work presents the influence of the manufacturing parameters and the feasibility of using rigid foams in manufacturing flat panels oriented to non-structural applications. The conclusion of the article describes the focus of future research.
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页数:14
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