DocumentCode :
2731421
Title :
Numerical Investigation of Three-Dimensional Separation in Internal and External Flows
Author :
Jacobi, R. ; Gross, A. ; Fasel, H.
Author_Institution :
Aerosp. & Mech. Eng., Univ. of Arizona, Tucson, AZ, USA
fYear :
2009
fDate :
15-18 June 2009
Firstpage :
96
Lastpage :
105
Abstract :
For Navy relevant geometries, separation of wall bounded flows is a highly complex phenomenon. Because of the relatively high Reynolds numbers involved,separation is always associated with considerable unsteadiness. This unsteadiness is caused by large coherent structures that are a consequence of hydrodynamic instability mechanisms of the mean flow. In addition, due to the shape of underwater vehicles (submarines, torpedoes, low aspect ratio lifting or control surfaces) the separation is three-dimensional (3D). The combination of three-dimensionality and unsteadiness results in a highly complex time-dependent topology of the separated region. In a combined numerical/experimental effort, we are studying laminar separation bubbles in external flows. For these simulations, we employ highly-resolved direct numerical simulations (DNS) to obtain a deeper understanding of the various physical mechanisms governing separation, transition, and reattachment of 3D bubbles. Ultimately, such understanding may pave the way for the development of effective and efficient strategies for preventing separation for practical applications. We are also evaluating hybrid turbulence models for high Reynolds number flows. In particular, we describe DNS, Reynolds-Averaged Navier-Stokes (RANS), and hybrid simulations of a turbulent square duct flow. Based on these simulations we decided on two hybrid strategies for simulating the asymmetric diffuser experiments that were conducted at Stanford University by J. Eaton et al. The first mean flow results look very encouraging. If successful, this research will result in hybrid models that are suitable for a wide variety of flow topologies and Reynolds numbers.
Keywords :
Navier-Stokes equations; bubbles; external flows; flow instability; flow separation; flow simulation; laminar flow; naval engineering; pipe flow; turbulence; Reynolds numbers; Reynolds-averaged Navier-Stokes flow; bubble reattachment; bubble transition; control surfaces; external flow; flow topology; highly complex time-dependent topology; highly-resolved direct numerical simulations; hybrid turbulence models; hydrodynamic instability; internal flow; laminar separation bubbles; low aspect ratio lifting; navy relevant geometry; submarines; three-dimensional separation; torpedoes; turbulent square duct flow; underwater vehicles; unsteadiness; wall bounded flows; Computational modeling; Friction; Numerical models; Radio access networks; Skin; Three dimensional displays; Topology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
DoD High Performance Computing Modernization Program Users Group Conference (HPCMP-UGC), 2009
Conference_Location :
San Diego, CA
Print_ISBN :
978-1-4244-5768-7
Type :
conf
DOI :
10.1109/HPCMP-UGC.2009.19
Filename :
5729450
Link To Document :
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