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A semi-analytical approach for flutter analysis of a high-aspect-ratio wing

机译:高纵横比翼振动分析的半分析方法

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We present a hybrid, semi-analytical approach to perform an eigenvalue-based flutter analysis of an Unmanned Aerial Vehicle (UAV) wing. The wing has a modern design that integrates metal and composite structures. The stiffness and natural frequency of the wing are calculated using a Finite Element (FE) model. The modal parameters are extracted by applying a recursive technique to the Lanczos method in the FE model. Subsequently, the modal parameters are used to evaluate the flutter boundaries in an analytical model based on the p-method. Two-degree-of-freedom bending and torsional flutter equations derived using Lagrange's principle are transformed into an eigenvalue problem. The eigenvalue framework is used to evaluate the stability characteristics of the wing under various flight conditions. An extension of this eigenvalue framework is applied to determine the stability boundaries and corresponding critical flutter parameters at a range of altitudes. The stability characteristics and critical flutter speeds are also evaluated through computational analysis of a reduced-order model of the wing in NX Nastran using the k- and pk-methods. The results of the analytical and computational methods are found to show good agreement with each other. A parametric study is also carried out to analyse the effects of the structural member thickness on the wing flutter speeds. The results suggest that changing the spar thickness contributes most significantly to the flutter speeds, whereas increasing the rib thickness decreases the flutter speed at high thickness values.
机译:我们介绍了一种混合,半分析方法来执行无人驾驶飞行器(UAV)翼的基于特征值的颤动分析。机翼具有现代设计,可集成金属和复合结构。机翼的刚度和固有频率使用有限元(Fe)模型计算。通过将递归技术应用于FE模型中的LANCZOS方法来提取模态参数。随后,模态参数用于基于P-方法评估分析模型中的颤振边界。使用拉格朗日原理导出的二维自由度和扭转颤动方程被转变为特征值问题。特征值框架用于评估各种飞行条件下机翼的稳定性特性。应用该特征值框架的扩展以确定一系列高度的稳定边界和相应的临界颤动参数。还通过使用K-and PK方法的NX Nastran中的翼形的阶数模型计算分析来评估稳定性特性和临界颤动速度。发现分析和计算方法的结果彼此展示了良好的一致。还进行了参数研究以分析结构构件厚度对机翼颤动速度的影响。结果表明,改变翼梁厚度最显着地贡献到颤振速度,而增加肋厚度在高厚度值下降低颤动速度。

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