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Flight Loads Prediction of High Aspect Ratio Wing Aircraft using Multibody Dynamics

机译:基于多体动力学的高长宽比机翼飞机飞行载荷预测

摘要

A framework based on multibody dynamics has been developed for the static and dynamic aeroelastic analyses of flexible high aspect ratio wing aircraft subject to structural geometric nonlinearities. Multibody dynamics allows kinematic nonlinearities and nonlinear relationships in the forces definition and is an efficient and promising methodology to model high aspect ratio wings, which are known to be prone to structural nonlinear effects because of the high deflections in flight. The multibody dynamics framework developed employs quasi-steady aerodynamics strip theory and discretizes the wing as a series of rigid bodies interconnected by beam elements, representative of the stiffness distribution, which can undergoes arbitrarily large displacements and rotations. The method is applied to a flexible high aspect ratio wing commercial aircraft and both trim and gust response analyses are performed in order to calculate flight loads. These results are then compared to those obtained with the standard linear aeroelastic approach provided by the Finite Element solver Nastran. Nonlinear effects come into play mainly because of the need of taking into account the large deflections of the wing for flight loads computation and of considering the aerodynamic forces as follower forces.
机译:已经开发了一种基于多体动力学的框架,该框架可以对受结构几何非线性影响的高纵横比机翼飞机进行静态和动态气动弹性分析。多体动力学允许在力定义中实现运动学非线性和非线性关系,并且是对高纵横比机翼建模的有效且有前途的方法,众所周知,由于飞行中的高挠度,机翼很容易受到结构非线性影响。所开发的多体动力学框架采用准稳态空气动力学条形理论,将机翼离散化为一系列由梁单元相互连接的刚体,代表了刚度分布,可以经历任意大的位移和旋转。该方法被应用于柔性高纵横比机翼商用飞机,并且执行了修剪和阵风响应分析,以计算飞行载荷。然后将这些结果与由有限元求解器Nastran提供的标准线性气动弹性方法获得的结果进行比较。非线性效应之所以起作用,主要是因为在计算飞行载荷时需要考虑机翼的大挠度,并且需要将空气动力视为从动力。

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