DocumentCode :
1103000
Title :
Derivative Particles for Simulating Detailed Movements of Fluids
Author :
Song, Oh-Young ; Kim, Doyub ; Ko, Hyeong-Seok
Author_Institution :
Sejong Univ., Seoul
Volume :
13
Issue :
4
fYear :
2007
Firstpage :
711
Lastpage :
719
Abstract :
We present a new fluid simulation technique that significantly reduces the nonphysical dissipation of velocity. The proposed method is based on an apt use of particles and derivative information. We note that a major source of numerical dissipation in the conventional Navier-Stokes equations solver lies in the advection step. Hence, starting with the conventional grid-based simulator, when the details of fluid movements need to be simulated, we replace the advection part with a particle simulator. When swapping between the grid-based and particle-based simulators, the physical quantities such as the level set and velocity must be converted. For this purpose, we develop a novel dissipation-suppressing conversion procedure that utilizes the derivative information stored in the particles, as well as in the grid points. For the fluid regions where such details are not needed, the advection is simulated using an octree-based constrained interpolation profile (CIP) solver, which we develop in this work. Through several experiments, we show that the proposed technique can reproduce the detailed movements of high-Reynolds-number fluids such as droplets/bubbles, thin water sheets, and whirlpools. The increased accuracy in the advection, which forms the basis of the proposed technique, can also be used to produce better results in larger scale fluid simulations.
Keywords :
bubbles; drops; flow simulation; interpolation; water; Navier-Stokes equations; advection; bubbles; derivative particles; dissipation-suppressing conversion; droplets; fluid movements; fluid simulation; high-Reynolds-number fluids; nonphysical velocity dissipation; octree-based constrained interpolation profile solver; particle simulator; thin water sheets; whirlpools; Computational modeling; Grid computing; Interpolation; Lagrangian functions; Level set; Liquids; Navier-Stokes equations; Particle tracking; Physics; Viscosity; Physically-based modeling; high-Reynolds-number fluid; multiphase fluid; water.; Algorithms; Computer Graphics; Computer Simulation; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Information Storage and Retrieval; Models, Theoretical; Numerical Analysis, Computer-Assisted; Particle Size; Rheology; User-Computer Interface;
fLanguage :
English
Journal_Title :
Visualization and Computer Graphics, IEEE Transactions on
Publisher :
ieee
ISSN :
1077-2626
Type :
jour
DOI :
10.1109/TVCG.2007.1022
Filename :
4293015
Link To Document :
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