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Fast algorithm for multiple time‐scale simulation of power system using parallel processing
Author(s) -
Harada Yuji,
Oyama Tsutomu
Publication year - 1997
Publication title -
electrical engineering in japan
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.136
H-Index - 28
eISSN - 1520-6416
pISSN - 0424-7760
DOI - 10.1002/(sici)1520-6416(199709)120:4<14::aid-eej3>3.0.co;2-s
Subject(s) - computer science , parallel processing , coefficient matrix , stability (learning theory) , algorithm , computation , matrix (chemical analysis) , electric power system , block (permutation group theory) , parallel algorithm , basis (linear algebra) , set (abstract data type) , parallel computing , power (physics) , computational science , mathematics , eigenvalues and eigenvectors , physics , materials science , geometry , quantum mechanics , machine learning , composite material , programming language
Abstract Power system analysis is the basis of operation and planning. Since power systems are very large and complex, however, long computation time is required for the analysis. Development of a fast calculation method for stability analysis is desirable. Recently, the method using multiple time‐scale numerical integration algorithm was developed for analyzing long‐term dynamics. This method has the problem of calculation time since the coefficient matrix is very large. It is expected that calculation time can be shortened using parallel processing. In order to increase the efficiency of parallel processing, the coefficient matrix must be divided since solution of a set of linear equations is the main part of stability analysis. In this paper, coefficient matrix is converted into BBDF matrix for effective calculation of parallel processing. Each subnetwork block can be divided again since it is sparse. The algorithm discussed in this paper was implemented on the nCUBE2S parallel processing computer system. The computing time is measured so that it can be compared to the computer time of a single‐processor system. © 1997 Scripta Technica, Inc. Electr Eng Jpn, 120(4): 14–22, 1997

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