National Repository of Grey Literature 34 records found  beginprevious25 - 34  jump to record: Search took 0.00 seconds. 
Porovnání numerické simulace tlaku na povrchu třepetajícího se profilu s experimentem v aerodynamickém tunelu
Horáček, Jaromír ; Sváček, Petr ; Vlček, Václav ; Feistauer, M.
The paper compares original experimental results with numerical solution of a 2D aeroelastic problem. The incompressible turbulent flow over a freely vibrating airfoil, with two degrees of freedom for rotation and translation with large vibration amplitudes, is described by the Reynolds averaged Navier Stokes (RANS) equations written in Arbitrary Lagrangian-Eulerian (ALE) form. The Spalart-Allmaras turbulence model is used and the flow is solved by the stabilized FEM. The numerical results are compared with the optical measurements of flow field araund a fluttering doublecircular arc (DCA) 18% profile elastcally supported in a subsonic wind tunnel. The interferometry method was used for airflow visualization in different phases of the profile motion. The numerical resulults for the pressure on the profile surface are in good agreement with the measurement.
Numerické simulace interakce proudu s leteckým profilem se třemi stupni volnosti
Růžička, M. ; Feistauer, M. ; Horáček, Jaromír ; Sváček, Petr
The subject of the paper is the numerical simulation of the interaction of two-dimensional incompressible viscous fluid and a vibrating airfoil with large deviations. The airfoil is considered as a solid body with three degrees of freedom. The airfoil performs rotation around an elastic axis, oscillations in the vertical direction and rotation of a flap. The nemerical simulation is based on the the finite element solution of the Navier-Stokes equations and the system of nonlinear ordinary differential equations deseribing the airfoil motion. The interaction and feedback phenomenon is numerically treated by a coupling procedure, which connects the structural problem and flow problem together. The timedependent computational domain and a moving mesh are taken into account with the aid of the Arbitrary Lagrangian-Eulerian (ALE) formulation. High Reynolds numbers up to 10 require the application of a suitable stabilizatin of the finite element discretization.
Vliv modelů proudění v aeroelastickém problému: Srovnání modelu turbulence s laminárním řešením Navier-Stokesových rovnic
Sváček, Petr ; Feistauer, M. ; Horáček, Jaromír
The study deals with numerical approximation of a 2D aeroelastic problem. A fully coupled formulation of flow over a freely vibrating airfoil with two degrees of freedom for rotation and translation is considered. The flow is described by the incompressible Navier-Stokes equations written in Arbitrary Lagrangian-Eulerian (ALE) form or by the Reynolds averaged Navier-Stokes system. The flow is solved by the stabilized finite element method. The developed method is verified by experimental data and the numerical results obtained for laminar and turbulent models are compare.
Vibrace leteckéhoj profilu se třemi stupni volnosti vybuzené proudem vzduchu
Růžička, M. ; Feistauer, M. ; Horáček, Jaromír ; Sváček, Petr
The subject of this article is the numerical simulation of the interaction of two-dimensional incompressible viscous fluid and a vibrating airfoil with large amplitudes. a solid airfoil with three degrees of freedom can rotate around the elastic axis, oscillate in the vertical direction and its flap can rotate. the numerical simulation consists of the finite element solution of the Navier-Stokes equations coupled with a system of nonlinear ordinary differential equations describing the airfoil motion. The time-dependent computational domain and moving grid are taken into account with the aid of the Arbitrary Lagrangian-eulerian (ALE) formulation. High Reynolds numbers up to 10 6 require the application of a suitable stabilization of the finite element discretization. Numerical tests and comparison with NASTRAN solver prove that the developed method is sufficiently accurate and robust.
Interakce proudění v kanále s pohybujícími se tělesy
Růžička, M. ; Feistauer, M. ; Horáček, Jaromír ; Sváček, Petr
The subject of this paper is the numerical simulation of the interaction of two-dimensional incompressible viscous flow through a channel (wind tunnel) and a vibrating airfoil. A solid airfoil with two degrees of freedom, which can rotate around the elastic axis and oscillate in the vertical direction, is considered. The numerical simulation consists of the finite element soulution of the Navier-Stokes equations coupled with the system of ordinary differential equations describing the airfoil motion. We discuss the discretization of the problem and present some computational results.
Nelineární zpětná vazba mezi nestlačitelným prouděním a kmitáním profilu se třemi stupni volnosti
Růžička, M. ; Feistauer, M. ; Sváček, P. ; Horáček, Jaromír
In this article we are concerned with the numerical solution of an aeroelastic problem of two dimensional viscous incompressible flow around an airfoil with three degrees of freedom in a wind tunnel the airfoil is represented by a solid body, which can perform vertical and torsional vibrations and its flap can rotate with respect to the airfoil. Model of the flow is formed by two-dimensional Navier-Stokes equations and the continuity equation. Stabilized finite element method is used for obtaining a numerical solution. Due to the motion of the airfoil the computational domain is time-dependent.
Numerical simulation of interaction of a vibrating airfoil with turbulent flax
Dubcová, L. ; Feistauer, M. ; Horáček, Jaromír ; Sváček, Petr
The report deals with numerical simulations of 2D viscous incompressible flow around a rotationaly vibrating profile. The flow is described by continuity and Navier-Stokes equations. Solution of the partial differential equations is based on finite element method. Because the Reynolds numbers higher than 10 000 are considered the solution is stabilized by SUPG method. Alge-braic turbulence model is taken into account and for simulations of the flow on moving grids the ALE method is used. the method was applied on harmonie vibrations of the profil NACA 0012 and the results are in good agreement with the experimental data obtained in ARTI.
Zpětná vazba v proudění nestlačitelné tekutiny a pohybujícího se tělesa
Růžička, M. ; Feistauer, M. ; Sváček, P. ; Horáček, Jaromír
the subject of this article is the numerical simulation of the interaction of two-dimensional incompressible viscous fluid and a vibrating airfoil. A solid airfoil with two degrees of freedom, which can rotate around the elastic axis and oscillate in the vertical direction, is considered. The numerical simulation sonsists of the finite element solutin of the Navier-Stokes equations coupled with a system of ordinary differential equations describing the airfoil motion. The time-dependent computational domain and a moving grid are taken into account with the aid of the Arbitrary Lagrangian-Eulerian (ALE) formulation of the Navier-Stokes equations. High Reynolds numbers up to 1 000 000 require the application of a suitable stabilization of the finite element discretization. Numerical tests prove that the developed method is sufficiently accurate and robust.
Interaction of fluid flow with an dirfoil
Feistauer, M. ; Horáček, Jaromír ; Sváček, P.
Numerical simulation of 2D oncompressible viscons fluid flow in interaktion with an vibrating dirfoil is described. The airfoil has two degrees of freedom, for rotation and translation. The Navier-Stokes and continuity equations are solved by finite element method associated with solution of ordinary differential equations describing the dirfoil motion. The computational domain is time dependent and the problem is solved by Arbitrary-Lagrangian-Eulerian (ALE) method.
ALE method application on interaction of flowing fluid with a vibrating airfoil
Růžička, M. ; Feistauer, M. ; Horáček, Jaromír ; Sváček, P.
Paper deals with the numerical solution of aeroelastic problem for an airfoil with two-degrees of freedom vibrating in 2D viscous incompressible fluid flowing in a channel. The airfoil is considered as a solid body vibrating with large amplitudes in traslation and rotation. Mathematical model for fluid is given by the unsteady Navier-Stokes equations, continuity equation and initial and mixed boundary conditions.

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