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Analysis and Tests of Reinforced Carbon-Epoxy/Foam-Core Sandwich Panels with Cutouts

机译:带切口的增强型碳环氧/泡沫芯夹芯板的分析和测试

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摘要

The results of a study of a low-cost structurally efficient minimum-gage shear-panel design that can be used in light helicopters are presented. The shear-panel design is based on an integrally stiffened syntactic-foam stabilized-skin with an all-bias-ply tape construction for stabilized-skin concept with an all-bias-ply tape construction for the skins. This sandwich concept is an economical way to increase the panel bending stiffness weight penalty. The panels considered in the study were designed to be buckling resistant up to 100 lbs/in. of shear load and to have an ultimate strength of 300 lbs/in. The panel concept uses unidirectional carbon-epoxy tape on a syntactic adhesive as a stiffener that is co-cured with the skin and is an effective concept for improving panel buckling strength. The panel concept also uses pultruded carbon-epoxy rods embedded in a syntactic adhesive and over-wrapped with a bias-ply carbon-epoxy tape to form a reinforcing beam which is an effective method for redistributing load around rectangular cutout. The buckling strength of the reinforced panels is 83 to 90 percent of the predicted buckling strength based on a linear buckling analysis. The maximum experimental deflection exceeds the maximum deflection predicted by a nonlinear analysis by approximately one panel thickness. The failure strength of the reinforced panels was two and a half to seven times of the buckling strength. This efficient shear-panel design concept exceeds the required ultimate strength requirement of 300 lbs/in by more than 100 percent.
机译:给出了可用于轻型直升机的低成本结构有效的最小尺寸剪切面板设计的研究结果。剪力板设计基于整体加固的句法泡沫稳定皮肤,以及用于皮肤的全偏置层胶带构造的用于稳定皮肤的全偏置层胶带构造。这种夹心概念是增加面板弯曲刚度重量损失的经济方法。研究中考虑的面板设计为可抵抗高达100 lbs / in的屈曲。最大剪切强度为300 lbs / in。面板概念使用句法粘合剂上的单向碳环氧胶带作为与皮肤共固化的加强剂,是提高面板屈曲强度的有效概念。面板概念还使用拉挤成型的碳环氧棒,该棒嵌入在句法粘合剂中,并用偏斜的碳环氧胶带包裹,以形成加强梁,这是在矩形切口周围重新分配载荷的有效方法。增强板的屈曲强度为基于线性屈曲分析的预测屈曲强度的83%至90%。最大实验挠度比通过非线性分析预测的最大挠度大约一个面板厚度。增强板的破坏强度是屈曲强度的两倍半到七倍。这种高效的剪力板设计理念将300 lbs / in的极限强度要求提高了100%以上。

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