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Design, Fabrication, and Testing of Composite Energy-Absorbing Keel Beams for General Aviation Type Aircraft

机译:通用航空飞机复合吸能龙骨梁的设计,制造和测试

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摘要

A lightweight energy-absorbing keel-beam concept was developed and retrofitted in a general aviation type aircraft to improve crashworthiness performance. The energy-absorbing beam consisted of a foam-filled cellular structure with glass fiber and hybrid glass/kevlar cell walls. Design, analysis, fabrication and testing of the keel beams prior to installation and subsequent full-scale crash testing of the aircraft are described. Factors such as material and fabrication constraints, damage tolerance, crush stress/strain response, seat-rail loading, and post crush integrity, which influenced the course of the design process are also presented. A theory similar to the one often used for ductile metal box structures was employed with appropriate modifications to estimate the sustained crush loads for the beams. This, analytical tool, coupled with dynamic finite element simulation using MSC.Dytran were the prime design and analysis tools. The validity of the theory as a reliable design tool was examined against test data from static crush tests of beam sections while the overall performance of the energy-absorbing subfloor was assessed through dynamic testing of 24 in long subfloor assemblies.
机译:开发了轻型吸能龙骨梁概念,并在通用航空型飞机上进行了改装,以提高防撞性能。能量吸收束由具有玻璃纤维和玻璃/凯夫拉纤维混合壁的泡沫填充蜂窝结构组成。描述了在安装之前的龙骨梁的设计,分析,制造和测试,以及随后对飞机进行的全面碰撞测试。还介绍了影响设计过程的因素,例如材料和制造约束,损伤容限,压溃应力/应变响应,座椅导轨载荷以及压溃后完整性。采用了一种与常用于延性金属箱形结构的理论相似的理论,并对它进行了适当的修改以估计梁的持续压溃载荷。这种分析工具,加上使用MSC.Dytran进行的动态有限元模拟,是主要的设计和分析工具。该理论作为可靠设计工具的有效性针对梁截面的静态压溃测试的测试数据进行了检验,同时通过动态测试长地板组件中的24个来评估吸能地板的整体性能。

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