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Analysis of slender thin-walled anisotropic box-beams including local stiffness and coupling effects

机译:细长薄壁各向异性箱梁的局部刚度和耦合效应分析

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Purpose-This study aims to analyse slender thin-walled anisotropic box-beams. Fiber-reinforced laminated composites could play an important role in the design of current and future generations of innovative civil aircrafts and unconventional unmanned configurations. The tailoring characteristics of these composites not only improve the structural performance, and thus reduce the structural weight, but also allow possible material couplings to be made. Static and dynamic aeroelastic stability can be altered by these couplings. It is, therefore, necessary to use an accurate and computationally efficient beam model during the preliminary design phase. Design/methodology/approach-A proper structural beam scheme, which is a modification of a previous first-level approximation scheme, has been adopted. The effect of local laminate stiffness has been investigated to check the possibility of extending the analytical approximation to different structural configurations. The equivalent stiffness has been evaluated for both the case of an isotropic configuration and for simple thin-walled laminated or stiffened sections by introducing classical thin-walled assumptions and the classical beam theory for an equivalent system. Coupling effects have also been included. The equivalent analytical and finite element beam behaviour has been determined and compared to validate the considered analytical stiffness relations that are useful in the preliminary design phase. Findings-The work has analyzed different configurations and highlighted the effect of flexural/torsion couplings and a local stiffness effect on the global behaviour of the structure. Three types of configurations have been considered, namely, a composite wing box configuration, with and without coupling effects; a wing box configuration with sandwich and cellular constructions; and a wing box with stiffened panels in a coupled or an uncoupled configuration. An advanced aluminium experimental test sample has also been described in detail. Good agreement has been found between the theoretical and numerical analyses and the experimental tests, thus confirming the validity of the analytical relations. Practical implications-The equivalent beam behaviour that has been determined and the stiffness calculation procedure that has been derived could be useful for future dynamic and aeroelastic analyses. Originality/value-The article presents an original derivation of the sectional characteristics of a thin-walled composite beam and a numerical/ experimental validation.
机译:目的-本研究旨在分析细长的薄壁各向异性箱形梁。纤维增强的层压复合材料可以在当前和未来的创新型民用飞机和非常规无人配置的设计中发挥重要作用。这些复合材料的定制特性不仅改善了结构性能,从而降低了结构重量,而且还允许进行可能的材料连接。这些耦合可以改变静态和动态的气动弹性稳定性。因此,有必要在初步设计阶段使用准确且计算效率高的梁模型。设计/方法/方法-采用了一种适当的结构梁方案,该方案是对以前的一级近似方案的修改。已经研究了局部层压板刚度的影响,以检查将解析近似值扩展到不同结构配置的可能性。通过引入等效的系统的经典薄壁假设和经典梁理论,已经对各向同性构型和简单薄壁层压或加劲截面的等效刚度进行了评估。耦合效应也已包括在内。确定了等效的分析和有限元梁行为,并进行了比较,以验证在初步设计阶段有用的分析刚度关系。研究结果-这项工作分析了不同的配置,并强调了挠曲/扭转耦合的影响以及局部刚度对结构整体性能的影响。已经考虑了三种类型的配置,即具有和不具有耦合效果的复合翼盒配置;以及带有三明治和蜂窝结构的翼盒配置;机翼箱具有在联接或未联接构造中的加劲板。还详细介绍了高级铝实验样品。在理论和数值分析与实验测试之间找到了很好的一致性,从而证实了分析关系的有效性。实际意义-已确定的等效梁性能以及已推导的刚度计算程序可能对将来的动态和气动弹性分析很有用。独创性/价值-本文提出了薄壁复合梁截面特性的原始推导以及数值/实验验证。

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