DocumentCode :
1998195
Title :
A Scalable Implicit Solver for Phase Field Crystal Simulations
Author :
Chao Yang ; Xiao-Chuan Cai
Author_Institution :
Inst. of Software, Beijing, China
fYear :
2013
fDate :
20-24 May 2013
Firstpage :
1409
Lastpage :
1416
Abstract :
The phase field crystal equation (PFC) is a popular model for simulating micro-structures in materials science and is very computationally expensive to solve. A highly scalable solver for PFC modeling is presented in this paper. The equation is discredited with a stabilized implicit finite difference method and the time step size is adaptively controlled to obtain physically meaningful solutions. The nonlinear system arising at each time step is solved by using a parallel Newton-Krylov-Schwarz algorithm. In order to achieve good performance, low-order homogeneous boundary conditions are imposed on the sub domain boundary in the Schwarz preconditioner. Experiments are carried out to exploit optimal choices of the preconditioner type, the sub domain solver and the overlap size. Numerical results are provided to show that the solver is scalable to thousands of processor cores.
Keywords :
adaptive control; computational complexity; crystal microstructure; finite difference methods; materials science computing; nonlinear control systems; parallel algorithms; PFC modeling; Schwarz preconditioner; adaptive control; computational complexity; low-order homogeneous boundary conditions; nonlinear system; parallel Newton-Krylov-Schwarz algorithm; phase field crystal equation; phase field crystal simulations; processor cores; scalable implicit solver; stabilized implicit finite difference method; subdomain boundary; Adaptation models; Additives; Computational modeling; Equations; Jacobian matrices; Mathematical model; Numerical models; Newton-Krylov-Schwarz; domain decomposition method; parallel scalability; phase field crystal equation; preconditioner; restricted additive Schwarz;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Processing Symposium Workshops & PhD Forum (IPDPSW), 2013 IEEE 27th International
Conference_Location :
Cambridge, MA
Print_ISBN :
978-0-7695-4979-8
Type :
conf
DOI :
10.1109/IPDPSW.2013.37
Filename :
6651034
Link To Document :
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