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Reduced order modelling for static and dynamic aeroelastic predictions with multidisciplinary approach

机译:多学科方法对静态和动态气动弹性预测的降阶建模

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We implement reduced order modelling techniques for aeroelastic predictions of the HIRENASD and S4T wings in order to represent CFD based high-fidelity solutions efficiently. Model reduction techniques such as non-intrusive Polynomial Chaos Expansion and Proper Orthogonal Decomposition are applied to both static and dynamic aeroelastic cases. The high-fidelity solutions are obtained by fluid structure interaction analysis using a 3D Euler unsteady aerodynamic solver and structural modal solution from a finite element solver. The model order reduction strategy is based on a multidisciplinary approach since both structural and aerodynamic input parameters are employed. The model order reduction is performed not only to represent the high-fidelity computational analyses when small variations of input parameters are considered but also to characterize the flutter responses of the S~4T wing in a broad range of input values over the entire flight regime for Mach numbers between 0.60 and 1.20. The efficient aeroelastic analyses performed using the developed reduced order models agreed well with the high-fidelity computational analyses.
机译:我们为HIRENASD和S4T机翼的气动弹性预测实施降阶建模技术,以便有效地表示基于CFD的高保真解决方案。模型压缩技术,例如非侵入式多项式混沌扩展和适当的正交分解,均适用于静态和动态气动弹性情况。通过使用3D欧拉非定常气动求解器和有限元求解器的结构模态求解器,通过流体结构相互作用分析获得高保真解。由于采用了结构和空气动力学输入参数,因此模型降阶策略基于多学科方法。进行模型阶数缩减不仅是为了表示当考虑输入参数的细微变化时的高保真度计算分析,而且是为了表征S〜4T机翼在整个飞行状态下的宽输入值范围内的颤振响应特性。马赫数在0.60和1.20之间。使用开发的降阶模型进行的有效气动弹性分析与高保真度计算分析非常吻合。

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