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A new matrix perturbation method for analytical solution of the complex modal eigenvalue problem of viscously damped linear vibration systems

Authors :
Zhen-hua, Lü
Zhen-dong, Feng
Chuan-liu, Fang
Source :
Applied Mathematics and Mechanics; August 1991, Vol. 12 Issue: 8 p767-776, 10p
Publication Year :
1991

Abstract

Abstract: A new matrix perturbation analysis method is presented for efficient approximate solution of the complex modal quadratic generalized eigenvalue problem of viscously damped linear vibration systems. First, the damping matrix is decomposed into the sum of a proportional- and a nonproportional-damping parts, and the solutions of the real modal eigenproblem with the proportional dampings are determined, which are a set of initial approximate solutions of the complex modal eigenproblem. Second, by taking the nonproportional-damping part as a small modification to the proportional one and using the matrix perturbation analysis method, a set of approximate solutions of the complex modal eigenvalue problem can be obtained analytically. The result is quite simple. The new method is applicable to the systems with viscous dampings which do not deviate far away from the proportional- damping case. It is particularly important that the solution technique be also effective to the systems with heavy, but not over, dampings. The solution formulas of complex modal eigenvlaues and eigenvectors are derived up to second- order perturbation terms. The effectiveness of the perturbation algorithm is illustrated by an exemplar numerical problem with heavy dampings. In addition, the practicability of approximately estimating the complex modal eigenvalues, under the proportional-damping hypothesis, of damped vibration systems is discussed by several numerical examples.

Details

Language :
English
ISSN :
02534827 and 15732754
Volume :
12
Issue :
8
Database :
Supplemental Index
Journal :
Applied Mathematics and Mechanics
Publication Type :
Periodical
Accession number :
ejs15199071
Full Text :
https://doi.org/10.1007/BF02458167