CFD-Based Techniques for Flutter Prediction Through the Generation of Generalized Aerodynamic Forces
- 1. Istanbul Tech Univ, Fac Aeronaut & Astronaut, TR-34469 Istanbul, Turkiye
Description
This study presents a high-fidelity computational framework for flutter prediction based on generalized aerodynamic forces (GAFs) derived from computational fluid dynamics (CFD) simulations. A reduced-order modeling (ROM) approach is employed, using a pulse excitation strategy to characterize the unsteady aerodynamic response of a structure across a wide range of reduced frequencies. The proposed methodology allows for the computation of GAFs in the frequency domain through a single unsteady simulation per structural mode, providing considerable computational savings compared to traditional harmonic analysis techniques. The simulation framework is implemented within a Python-based fluid-structure interaction environment that couples the open-source CFD tool SU2 with external structural solvers such as MSC NASTRAN. The AGARD 445.6 wing is a benchmark case for validating the methodology by comparing computed generalized aerodynamic forces and flutter speeds against experimental data and results from the literature across a range of Mach numbers.
Files
bib-7bf35ab6-587b-41e0-9da1-62936453b1bd.txt
Files
(192 Bytes)
| Name | Size | Download all |
|---|---|---|
|
md5:702d759b9f7f6befc9da9ab6b7d68319
|
192 Bytes | Preview Download |