Aeroelastic Analysis of Highly Flexible Wings with Linearized Frequency-Domain Aerodynamics

被引:1
|
作者
Stanford, Bret K. [1 ]
Jacobson, Kevin E. [1 ]
Chwalowski, Pawel [1 ]
机构
[1] NASA Langley Res Ctr, Hampton, VA 23681 USA
来源
JOURNAL OF AIRCRAFT | 2024年 / 61卷 / 02期
关键词
Dynamic Aeroelastic Analysis; Time Domain Analysis; Aerodynamic Force; Aircraft Wing Design; Structural Dynamics and Characterization; Pressure Coefficient; Influence Coefficients; Computational Fluid Dynamics; Structural Nonlinearities; CFD Codes;
D O I
10.2514/1.C037432
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Aeroelastic flutter analysis of configurations with geometric structural nonlinearities typically is done with time-domain analysis. The results from this process are computationally expensive and can yield cumbersome results that may be difficult to manage and interpret. Compared to time-domain methods, frequency-domain flutter analysis can provide additional insight into the characteristics of a flutter instability. By linearizing the aeroelastic problem about the nonlinear equilibrium state, this work applies frequency-domain aeroelastic analysis to the Pazy wing, the subject of the Large Deformation Working Group in the Aeroelastic Prediction Workshop. Generalized aerodynamic forces (GAFs) are computed with both a doublet-lattice method and a computational fluid dynamics solver at a range of reduced frequencies as well as a range of dynamic pressures to account for the dependence of the mode shapes on the nonlinear equilibrium state. These GAFs are used in a p-k flutter solver, which is modified to handle the nonlinear dependence of the stiffness matrix and GAFs on the dynamic pressure. The hump mode flutter mechanism predicted by the linear doublet-lattice method is found to underpredict the severity of the instability, relative to the computational fluid dynamics-based tool, though the overall static and dynamic aeroelastic mechanisms predicted by the two fidelities are similar.
引用
收藏
页码:365 / 374
页数:10
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