Title of article :
Parallel DSMC method using dynamic domain decomposition
Author/Authors :
J.-S. Wu، نويسنده , , K.-C. Tseng، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Abstract :
A general parallel direct simulation Monte Carlo method using unstructured mesh is introduced, which
incorporates a multi-level graph-partitioning technique to dynamically decompose the computational
domain. The current DSMC method is implemented on an unstructured mesh using particle raytracing
technique, which takes the advantages of the cell connectivity information. In addition, various
strategies applying the stop at rise (SAR) (IEEE Trans Comput 1988; 39:1073–1087) scheme is studied
to determine how frequent the domain should be re-decomposed. A high-speed, bottom-driven cavity
flow, including small, medium and large problems, based on the number of particles and cells, are
simulated. Corresponding analysis of parallel performance is reported on IBM-SP2 parallel machine
up to 64 processors. Analysis shows that degree of imbalance among processors with dynamic load
balancing is about 16
– 1
2 of that without dynamic load balancing. Detailed time analysis shows that
degree of imbalance levels off very rapidly at a relatively low value with increasing number of
processors when applying dynamic load balancing, which makes the large problem size fairly scalable
for processors more than 64. In general, optimal frequency of activating SAR scheme decreases
with problem size. At the end, the method is applied to compute two two-dimensional hypersonic
flows, a three-dimensional hypersonic flow and a three-dimensional near-continuum twin-jet gas flow
to demonstrate its superior computational capability and compare with experimental data and previous
simulation data wherever available
Keywords :
direct simulation Monte Carlo , Parallel , Graph partition , dynamic domain decomposition , Hypersonic flow , near-continuum
Journal title :
International Journal for Numerical Methods in Engineering
Journal title :
International Journal for Numerical Methods in Engineering