Development of Transonic Unsteady Aerodynamic Reduced-Order Models Using System Identification Techniques

A. N. Carloni, J. Azevedo
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Abstract

The present paper develops a reduced-order model capable of modeling unsteady aerodynamic loads in the transonic regime using system identification techniques. The computational fluid dynamics (CFD) calculations are based on the Euler equations and the code uses a finite volume formulation for general unstructured grids. A centered spatial discretization with added artificial dissipation is used, and an explicit Runge-Kutta time marching method is employed. For comparison reasons, unsteady calculations are performed using mode-by-mode and simultaneous excitation approaches. System identification techniques are employed to allow the splitting of the aerodynamic coefficient time histories into the contribution of each individual mode to the corresponding aerodynamic transfer function. Such methodology is applied to model the aerodynamic terms of the aeroelastic state-space system particularly of a NACA 0012 airfoil-based typical section. Results demonstrate the importance of signal processing techniques to compute the aerodynamic transfer functions and also the advantageous applicability of transonic unsteady aerodynamic reduced-order models to perform aeroelastic analyses in the frequency domain.
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基于系统辨识技术的跨声速非定常气动降阶模型研究
本文利用系统辨识技术建立了一种能模拟跨声速非定常气动载荷的降阶模型。计算流体动力学(CFD)的计算是基于欧拉方程和代码使用有限体积公式一般非结构化网格。采用带人工耗散的中心空间离散化方法,采用显式龙格-库塔时间推进法。为了比较,非定常计算采用逐模法和同步激励法进行。采用系统识别技术,允许将气动系数时程拆分为每个单独模式对相应气动传递函数的贡献。将该方法应用于NACA 0012翼型典型截面气动弹性状态-空间系统的气动项建模。结果表明了信号处理技术在气动传递函数计算中的重要性,以及跨声速非定常气动降阶模型在频域气动弹性分析中的优越适用性。
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