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Aeroelastic Modeling of the AGARD 445.6 Wing Using the Harmonic-Balance-Based One-Shot Method

机译:基于谐波平衡的一击法对AGARD 445.6机翼进行气动弹性建模

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摘要

The harmonic-balance-based one-shot method is developed for modeling the aeroelastic response of three-dimensional configurations such as aircraft wings in transonic flow regimes. This approach computes both of the fluid and structure fields by integrating respective harmonic-balance forms of governing equations in pseudotime, and variables of both fields are converged simultaneously in one shot. Several significant advantages of this code-coupling approach are observed. First, the computational cost is nearly independent of the number of structural modes retained in the analysis, which offers substantial computational efficiency over traditional aeroelastic solution techniques. Second, the solution of the two fields needs not be time synchronized, unlike what is required in traditional dual-time-stepping time-accurate approaches. This allows two solvers to use respective optimal physical time steps (different number of harmonics), different (optimal) pseudotime steps, as well as different integration techniques (explicit or implicit) to achieve the fastest convergence rates. The two operational modes of the one-shot method, which requires either the reduced velocity or the vibration amplitude as the main input, are discussed in detail. Numerical results of the AGARD 445.6 wing model show that the one-shot method can very rapidly predict the flutter boundary as well as the limit-cycle-oscillation response, offering a promising new technique to solve dynamic aeroelasticity problems.
机译:开发了基于谐波平衡的单发方法,用于对跨音速流态下的三维构型(如飞机机翼)的气动弹性响应进行建模。该方法通过在伪时间中整合控制方程的相应谐波平衡形式来计算流体场和结构场,并且两个场的变量一次收敛。可以观察到这种代码耦合方法的几个显着优点。首先,计算成本几乎与分析中保留的结构模式数量无关,与传统的空气弹性求解技术相比,它提供了可观的计算效率。其次,这两个领域的解决方案不需要时间同步,这与传统的双时间步长时间精确方法所要求的不同。这允许两个求解器使用各自的最佳物理时间步长(不同数量的谐波),不同的(最佳)伪时间步长以及不同的积分技术(显式或隐式)来达到最快的收敛速度。详细讨论了单触发方法的两种操作模式,这些模式需要降低速度或将振动幅度作为主要输入。 AGARD 445.6机翼模型的数值结果表明,单发方法可以非常快速地预测扑动边界以及极限循环的振荡响应,为解决动态空气弹性问题提供了一种有希望的新技术。

著录项

  • 来源
    《AIAA Journal》 |2019年第11期|4885-4902|共18页
  • 作者

    Li Hang; Ekici Kivanc;

  • 作者单位

    Univ Tennessee Mech Aerosp & Biomed Engn Dept Knoxville TN 37996 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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