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The Application of Finite Element Methods to Aeroelastic Lifting Surface Flutter

机译:有限元方法在气动弹性举升面颤振中的应用

摘要

Aeroelastic behavior prediction is often confined to analytical or highly computational methods, so I developed a low degree of freedom computational method using structural finite elements and unsteady loading to cover a gap in the literature. Finite elements are readily suitable for determination of the free vibration characteristics of eccentric, elastic structures, and the free vibration characteristics fundamentally determine the aeroelastic behavior. I used Theodorsen’s unsteady strip loading formulation to model the aerodynamic loading on linear elastic structures assuming harmonic motion. I applied Hassig’s ‘p-k’ method to predict the flutter boundary of nonsymmetric, aeroelastic systems. I investigated the application of a quintic interpolation assumed displacement shape to accurately predict higher order characteristic effects compared to linear analytical results. I show that quintic interpolation is especially accurate over cubic interpolation when multi-modal interactions are considered in low degree of freedom flutter behavior for high aspect ratio HALE aircraft wings.
机译:气动弹性行为的预测通常仅限于分析或高度计算的方法,因此我开发了一种使用结构有限元和非稳态载荷的低自由度计算方法,以弥补文献中的空白。有限元很容易确定偏心弹性结构的自由振动特性,而自由振动特性从根本上决定了空气弹性行为。我用Theodorsen的非定常条形荷载公式来模拟假设有谐调运动的线性弹性结构上的空气动力学荷载。我应用了Hassig的“ p-k”方法来预测非对称气动弹性系统的颤动边界。我调查了五次插值假设位移形状的应用,以与线性分析结果相比准确预测更高阶的特征效应。我表明,在高纵横比HALE飞机机翼的低自由度颤振行为中考虑多模式相互作用时,五次插值比三次插值特别准确。

著录项

  • 作者

    Guertin Matthew;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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