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CFD-based aeroelastic reduced-order modeling robust to structural parameter variations

机译:基于CFD的气动弹性降阶建模对结构参数变化具有鲁棒性

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This article deals with the development of two efficient computational-fluid-dynamics (CFD) based models for the computation of unsteady aerodynamic motion-induced forces. In contrast to established reduced-order modeling (ROM) approaches, which are generally fixed to a given set of structural eigenmodes, the proposed methods can be applied for variable mode shapes. Hence, the generated aerodynamic models remain valid to some extent even if mass and stiffness variations within the underlying finite-element (FE) model are considered. In this way, additional computationally demanding CFD computations are avoided once the model has been obtained. Under this premise, two modeling frameworks robust to structural parameter variations are developed, while so-called basis modes are employed to approximate arbitrary mode shapes. Firstly, a time-domain ROM originating from linear system identification principles (SI-ROM) is presented and, secondly, a frequency-domain approach based on a small disturbance CFD solver (SD-ROM) is proposed. Moreover, two different strategies for the basis mode generation are evaluated. The first method is based on a local approximation using radial basis functions, whereas the second method uses two-dimensional Chebyshev polynomials in order to yield a global approximation of the structural grid deformations. Both novel ROM approaches combined with the two basis mode construction techniques are demonstrated and assessed regarding their efficiency and accuracy. The results in terms of the well-known AGARD 445.6 wing configuration demonstrate that the proposed methods can reproduce the unsteady aerodynamic forces accurately, while the computational effort is significantly reduced. Moreover, generic modifications with respect to the FE model are considered to indicate the potential of the new methods regarding aircraft aeroelastic design and optimization. (C) 2017 Elsevier Masson SAS. All rights reserved.
机译:本文讨论了两个基于有效计算流体动力学(CFD)的模型的发展,用于计算非定常空气动力学运动引起的力。与通常固定到给定的一组结构本征模式的已建立的降阶建模(ROM)方法相反,所提出的方法可以应用于可变模式形状。因此,即使考虑了基础有限元(FE)模型中的质量和刚度变化,生成的空气动力学模型在一定程度上仍然有效。以这种方式,一旦获得模型,就避免了额外的计算需求的CFD计算。在此前提下,开发了两个对结构参数变化具有鲁棒性的建模框架,同时采用了所谓的基本模式来近似任意模式形状。首先,提出了一种基于线性系统识别原理的时域ROM(SI-ROM),其次,提出了一种基于小扰动CFD求解器的频域方法(SD-ROM)。此外,评估了两种不同的基本模式生成策略。第一种方法基于使用径向基函数的局部逼近,而第二种方法使用二维Chebyshev多项式以产生结构网格变形的全局逼近。两种新颖的ROM方法与两种基本模式的构造技术相结合,都对其效率和准确性进行了演示和评估。根据众所周知的AGARD 445.6机翼配置得出的结果表明,所提出的方法可以准确地再现不稳定的空气动力,同时显着减少了计算工作量。此外,考虑到对有限元模型的一般修改,以表明有关飞机气动弹性设计和优化的新方法的潜力。 (C)2017 Elsevier Masson SAS。版权所有。

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