The exploitation of computational fluid dynamics for aeroelastic simulations is mainly based on time-domain simulations. There is an intense research effort to overcome the computational cost of this approach. Significant aeroelastic effects driven by nonlinear aerodynamics include the transonic flutter dip and limit-cycle oscillations. The paper describes the use of Hopf bifurcation and center manifold theory to compute flutter speeds and limit-cycle responses of wings in transonic flow when the aerodynamics are modeled by the Euler equations. The cost of the calculations is comparable to steady-state calculations based on computational fluid dynamics. The paper describes two methods for finding stability boundaries and then an approach to reducing the full-order system to two degrees of freedom in the critical mode. Details of the three methods are given, including the calculation of first, second, and third Jacobians and the solution of sparse linear systems. Results for the AGARD wing, a supercritical transport type of wing, and the limit-cycle response of the Goland wing are given.
Fast prediction of transonic aeroelastic stability and limit cycles
Schnelle Vorhersage der transsonisch aeroelastischen Stabilität und der Grenzzyklen
AIAA Journal (online) ; 45 , 6 ; 1370-1381
2007
12 Seiten, 11 Bilder, 2 Tabellen, 32 Quellen
Aufsatz (Zeitschrift)
Englisch
numerische Strömungssimulation , Zeitbereichanalyse , numerische Simulation , Grenzfrequenz , transsonische Strömung , Hopf-Bifurkation , Aerodynamik , Euler-Gleichung , Vorhersagetheorie , superkritische Strömung , superkritischer Flügel , Flugzeugtragwerk , Stabilitätsgrenze , Eigenwertanalyse , Druckverteilung , Mach-Zahl , Kostenanalyse
INTERDISCIPLINARY TOPICS - Fast Prediction of Transonic Aeroelastic Stability and Limit Cycles
Online Contents | 2007
|Prediction of Transonic Limit Cycle Oscillations using an Aeroelastic Harmonic Balance Method
British Library Conference Proceedings | 2014
|