DocumentCode :
1102602
Title :
Lattice-based flow field modeling
Author :
Wei, Xiaoming ; Zhao, Ye ; Fan, Zhe ; Li, Wei ; Qiu, Feng ; Yoakum-Stover, Suzanne ; Kaufman, Arie E.
Author_Institution :
Dept. of Comput. Sci., Stony Brook University, NY, USA
Volume :
10
Issue :
6
fYear :
2004
Firstpage :
719
Lastpage :
729
Abstract :
We present an approach for simulating the natural dynamics that emerge from the interaction between a flow field and immersed objects. We model the flow field using the lattice Boltzmann model (LBM) with boundary conditions appropriate for moving objects and accelerate the computation on commodity graphics hardware (GPU) to achieve real-time performance. The boundary conditions mediate the exchange of momentum between the flow field and the moving objects resulting in forces exerted by the flow on the objects as well as the back-coupling on the flow. We demonstrate our approach using soap bubbles and a feather. The soap bubbles illustrate Fresnel reflection, reveal the dynamics of the unseen flow field in which they travel, and display spherical harmonics in their undulations. Our simulation allows the user to directly interact with the flow field to influence the dynamics in real time. The free feather flutters and gyrates in response to lift and drag forces created by its motion relative to the flow. Vortices are created as the free feather falls in an otherwise quiescent flow.
Keywords :
computer graphic equipment; data visualisation; digital simulation; flow simulation; image texture; realistic images; rendering (computer graphics); vortices; Fresnel reflection; boundary conditions; bubble simulation; feather simulation; flow field interaction; force evaluation; graphics hardware; immersed object; lattice Boltzmann model; lattice-based flow field model; two-way solid-fluid coupling; Acceleration; Boundary conditions; Computational fluid dynamics; Computational modeling; Feathers; Graphics; Hair; Hardware; Lattice Boltzmann methods; Solid modeling; 65; Index Terms- Lattice Boltzmann model; bubble simulation; computation on GPU.; feather simulation; flow field interaction; force evaluation; hardware acceleration; two-way solid-fluid coupling;
fLanguage :
English
Journal_Title :
Visualization and Computer Graphics, IEEE Transactions on
Publisher :
ieee
ISSN :
1077-2626
Type :
jour
DOI :
10.1109/TVCG.2004.48
Filename :
1333669
Link To Document :
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