DocumentCode :
2748823
Title :
Large scale simulation of particulate flows
Author :
Sameh, Ahmed H. ; Sarin, Vivek
Author_Institution :
Dept. of Comput. Sci., Purdue Univ., West Lafayette, IN, USA
fYear :
1999
fDate :
12-16 Apr 1999
Firstpage :
660
Lastpage :
666
Abstract :
Simulations of particles in fluid flows are of great interest to numerous industries using sedimentation, fluidization, lubricated transport, and hydraulic fracturing of hydrocarbon reservoirs. Simulating incompressible viscoelastic flows with millions of rigid particles is computationally a very challenging problem. In addition to using sophisticated modeling techniques and numerical algorithms, one must develop a scalable parallel formulation of the simulation. This task is further complicated by the dynamic nature of the system resulting from unrestricted motion of the particles. In this paper we present an efficient algorithm for simulating particulate flows and discuss its parallel implementation. At each time step, a number of linear systems are solved using preconditioned iterative methods in which the matrix-vector product does not require explicit computation and storage of the matrix. The preconditioners developed for these systems are optimal so that convergence is assured in a fixed number of iterations. Moreover these preconditioners do not require matrix inversion, and can be applied efficiently in parallel using their matrix-free forms. As a result the algorithm is highly parallel and scalable, and achieves good speed improvement on the SGI Origin 2000
Keywords :
computational fluid dynamics; convergence of numerical methods; digital simulation; flow simulation; iterative methods; matrix algebra; non-Newtonian flow; parallel algorithms; two-phase flow; SGI Origin 2000; convergence; dynamic system; fluid flows; fluidization; hydraulic fracturing; hydrocarbon reservoirs; incompressible viscoelastic flows; large scale simulation; linear systems; lubricated transport; matrix-vector product; modeling techniques; numerical algorithms; particles; particulate flows; preconditioned iterative methods; rigid particle; scalable parallel formulation; sedimentation; speed improvement; unrestricted particle motion; Atmospheric modeling; Computational modeling; Elasticity; Fluid flow; Fluidization; Hydrocarbon reservoirs; Iterative algorithms; Large-scale systems; Numerical models; Viscosity;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel Processing, 1999. 13th International and 10th Symposium on Parallel and Distributed Processing, 1999. 1999 IPPS/SPDP. Proceedings
Conference_Location :
San Juan
Print_ISBN :
0-7695-0143-5
Type :
conf
DOI :
10.1109/IPPS.1999.760547
Filename :
760547
Link To Document :
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