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Evaluation of the mechanisms of water migration through honeycomb core

机译:评估蜂窝芯中水迁移的机理

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Thirteen commerical wing panels were fabricated and flown on a commercial aircraft to investigate the mechanisms of water migration through various honeycomb cores. A 12.2 J impact damage was not observed to cause damage propagation in aluminum and Korex(R) honeycomb materials. This was attributed to the ability of the cores to localize the impact damage. In Nomex(R) and glass fiber cores a different damage propagation mechanism was observed. In these cores, the damage was not confined to the localized area around the impact. Instead, core damage was seen as far as 2.0 cm from the point of impact. This increased core damage allowed the core to retain water. The retained water helped propagate the impact damage through a freeze thaw mechanism. Speed-tape repairs were only found to be statistically significant when water migrated through the core. Filling the honeycomb core with foam was shown to be an effective method for minimizing the damaging effects of water ingression. Slotting and draining the core also offered some relief from water accumulation in the core, but foaming damaged core was established as the most effective technique. (C) 2003 Kluwer Academic Publishers. [References: 11]
机译:制造了13架商业机翼面板,并在一架商用飞机上飞行,以研究水通过各种蜂窝状芯体迁移的机理。没有观察到12.2J的冲击损伤导致铝和Korex蜂窝材料中的损伤传播。这归因于芯部定位冲击损伤的能力。在Nomex(R)和玻璃纤维芯中,观察到了不同的损伤传播机制。在这些核心中,损害不限于撞击周围的局部区域。取而代之的是,从撞击点看,芯部损坏最远为2.0厘米。岩心损伤的增加使岩心得以保水。残留的水通过冻融机制帮助传播冲击损伤。仅当水流过岩心时,才发现快速胶带的修理具有统计学意义。已证明用泡沫填充蜂窝芯是使水浸入的破坏作用最小化的有效方法。排干岩心也可以减轻岩心中的水积聚,但发泡受损的岩心被认为是最有效的技术。 (C)2003 Kluwer学术出版社。 [参考:11]

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