DocumentCode :
2223348
Title :
Visualization of the energy-containing turbulent scales
Author :
Helgeland, A. ; Andreassen, O. ; Ommundsen, A. ; Reif, B.A.P. ; Werne, J. ; Gaarder, T.
Author_Institution :
UniK, Norway
fYear :
2004
fDate :
12-12 Oct. 2004
Firstpage :
103
Lastpage :
109
Abstract :
In this study, we explore a novel approach for visualizing the energetic turbulent structures in a flow field. The flow field is generated by a direct numerical simulation (DNS) of a stratified turbulent shear layer instigated by the Kelvin-Helmholtz instability. The use of so-called structure-based tensors combined with volume rendering seems to be a very promising tool to gain new insight into the dynamically most important part of the turbulence. Rendering of these tensors depicts the large-scale structures that carry most of the turbulence energy. This is in distinct contrast to traditional methods based on derivatives of the velocity field, such as those based on the velocity gradient tensor and vorticity. These methods only capture the smaller-scale structures of the flow. Traditionally, statistical measures are used to handle the enormous amount of data generated by DNS, whereby a lot of detailed information is inevitably lost. The rapid increase in computer performance combined with advanced visualization techniques makes it possible to use a non-statistical or deterministical approach to study the kinematic and dynamic properties of turbulent flows. This paper presents a promising first attempt to render structure-based tensors to see how faithfully they can describe the large-scale structures in a stratified turbulent shear flow.
Keywords :
computational fluid dynamics; computer vision; data visualisation; flow instability; flow visualisation; rendering (computer graphics); shear turbulence; stratified flow; Kelvin-Helmholtz instability; direct numerical simulation; energetic turbulent structures visualization; energy-containing turbulent scales visualization; flow field; stratified turbulent shear layer; structure-based tensors; turbulence energy; turbulent flows; turbulent shear flow; velocity gradient tensor; velocity gradient vorticity; volume rendering; Computer performance; Computer vision; Data visualization; Fluid dynamics; Graphics; Image processing; Large-scale systems; Numerical simulation; Tensile stress; USA Councils; 3D Vector field visualization; Features in volume data sets; Fluid Dynamics; Multi-field Visualization; Structure Tensors; Turbulence; Volume rendering of extremely large datasets;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Volume Visualization and Graphics, 2004 IEEE Symposium on
Conference_Location :
Austin, TX, USA
Print_ISBN :
0-7803-8781-3
Type :
conf
DOI :
10.1109/SVVG.2004.15
Filename :
1374291
Link To Document :
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