Refine
Year of publication
Document Type
- Part of a Book (16)
- Conference Proceeding (7)
- Article (reviewed) (6)
- Book (6)
- Article (unreviewed) (2)
- Contribution to a Periodical (1)
Conference Type
- Konferenzartikel (6)
- Konferenz-Abstract (1)
Has Fulltext
- no (38) (remove)
Is part of the Bibliography
- yes (38)
Keywords
- Dissipation (3)
- Strömungsmechanik (3)
- Aerostatik (2)
- Energiebilanz (2)
- Flüssigkeit (2)
- Hydrodynamik (2)
- Hydrostatik (2)
- Nachruf (2)
- Reynolds-Zahl (2)
- Schallgeschwindigkeit (2)
Institute
- Fakultät Maschinenbau und Verfahrenstechnik (M+V) (38) (remove)
Open Access
- Closed Access (19)
- Closed (8)
- Open Access (5)
- Bronze (1)
- Hybrid (1)
Vortex breakdown phenomena in rotating fluids are investigated both theoretically and experimentally. The fluid is contained in a cone between two spherical surfaces. The primary swirling motion is induced ba the rotating lower boundary. The upper surface can be fixed with non-slip condition or can be a stress-free surface. Depending on these boundary conditions and on the Reynolds number, novel structures of recirculation zones are realized. The axisymmetric flow patterns are simulated numerically by a finite difference method. Experiments are done to visualize the topological structure of the flow pattern and to observe the existence ranges of the different recirculating flows. The comparison between theory and experiment shows good agreement with respect to the topological structure of the flow.
Shapes and structures of vortex breakdown phenomena in rotating fluids are visualized. We investigate the flow in a cylindrical container and in a cone between two spherical surfaces. The primary swirling flow is induced by the rotating upper disk in the cylindrical case and by the lower boundary in the spherical case. The upper surface can be fixed with a no slip condition or can be a stress-free surface. Depending on these boundary conditions and on the Reynolds number novel structures of recirculation zones are realized. Experiments are done to visualize the topological structure of the flow and to determine their existence range as function of the geometry and rotation rate. A comparison between the experimental and theoretical approach shows a good agreement in respect to the topological structures of the flows.
Die Kombination von Reibung und Kompressibilität wird bei der Rohrströmung, der Kugelumströmung und der laminaren und turbulenten Plattengrenzschicht untersucht. Das Auftreten von Verdichtungsstößen führt zur Stoß-Grenzschicht-Interferenz und auf den Tsien-Parameter. Die Mach-Reynoldszahl Ähnlichkeit in der Gasdynamik führt zur Abgrenzung der verschiedenen Strömungsbereiche. Resultate von Windkanaluntersuchungen sowie analytischen und numerischen Berechnungen werden für das Rhombusprofil und das NACA 0012 Profil analysiert.
Die Kombination von Reibung und Kompressibilität wird bei der Rohrströmung, der Kugelumströmung und der laminaren und turbulenten Plattengrenzschicht untersucht. Das Auftreten von Verdichtungsstößen führt zur Stoß-Grenzschicht-Interferenz und auf den Tsien-Parameter. Die Mach-Reynoldszahl Ähnlichkeit in der Gasdynamik führt zur Abgrenzung der verschiedenen Strömungsbereiche. Resultate von Windkanaluntersuchungen sowie analytischen und numerischen Berechnungen werden für das Rhombusprofil und das NACA 0012 Profil analysiert.
We herein present a topology design method based on local optimality criteria which has been implemented in an open source Navier-Stokes solver for turbulent flows. Our method aims for the fast generation of geometry proposals in the early conceptual phase. To the best of our knowledge, this is the first local criteria approach utilizing a wall function turbulence model in order to consider turbulent flows. In order to allow for the growth as well as the shrinkage, or even the formation or disappearance of structural features, a topological approach is chosen. By introducing a volume fraction parameter, we distinguish between fluid and solid properties in each control volume. The fluid-solid interface is represented by an immersed boundary method using a piecewise linear surface reconstruction.
The free convection in a vertical gap is generalized to realize new analytical solutions of the Boussinesq-equations. The steady and time-dependent solutions for the temperature and velocity distribution are discussed in detail depending on the mass flux in vertical direction. The range of existence for flows with and without back flow is obtained. The transient behaviour of the solutions during the time-dependent development displays interesting physical behaviour.