The AGARD 445.6 configuration is the most popular validation test case for transonic flutter predictions, but the actual extent of truly nonlinear transonic flow for this case is unclear, due to the sparsity of the experimental data, and the thin profile of the wing. This work utilizes a combination of mesh adaptation and the linearized frequency-domain method to obtain high-quality viscous and inviscid flutter predictions; these solutions show a double flutter dip through the transonic Mach range driven by complex shock growth across the wing. A single experimental flutter point lies in this flutter dip area, which is not enough to assess the accuracy of these transonic flutter predictions. Modeling the boundary layer of the wind tunnel wall (as opposed to the commonly-assumed symmetry wall assumption) appears to have a large impact on the predicted flutter boundary, but true mesh convergence of this scenario is a challenge.


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    Titel :

    Transonic Flutter Dips of the AGARD 445.6 Wing


    Beteiligte:

    Kongress:

    AIAA SciTech Forum ; 2023 ; National Harbor, MD, US


    Medientyp :

    Aufsatz (Konferenz)


    Format :

    Keine Angabe


    Sprache :

    Englisch


    Schlagwörter :


    Transonic Flutter Dips of the AGARD 445.6 Wing

    Stanford, Bret K. / Jacobson, Kevin E. | AIAA | 2024


    Transonic Flutter Dips of the AGARD 445.6 Wing

    Stanford, Bret / Jacobson, Kevin | TIBKAT | 2023


    Transonic Flutter Dips of the AGARD 445.6 Wing

    Stanford, Bret / Jacobson, Kevin | AIAA | 2023


    Transonic Flutter Dips of the AGARD 445.6 Wing

    Bret Stanford / Kevin Jacobson | NTRS


    Transonic Flutter Dips of the AGARD 445.6 Wing

    B. Stanford / K. Jacobson | NTIS | 2022