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Cited 13 time in webofscience Cited 13 time in scopus
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Reduced-order modeling of nonlinear structural dynamical systems via element-wise stiffness evaluation procedure combined with hyper-reduction

Authors
Lee, JonggeonLee, JaehunCho, HaeseongKim, EuiyoungCho, Maenghyo
Issue Date
Feb-2021
Publisher
SPRINGER
Keywords
Stiffness evaluation procedure; Non-intrusive reduced-order modeling; Structural dynamics; Discrete empirical interpolation; Hyper-reduction
Citation
COMPUTATIONAL MECHANICS, v.67, no.2, pp 523 - 540
Pages
18
Indexed
SCIE
SCOPUS
Journal Title
COMPUTATIONAL MECHANICS
Volume
67
Number
2
Start Page
523
End Page
540
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/5397
DOI
10.1007/s00466-020-01946-7
ISSN
0178-7675
1432-0924
Abstract
In nonlinear analysis, performing iterative inverse calculation and nonlinear system construction procedures incurs expensive computational costs. This paper presents an element-wise stiffness evaluation procedure combined with hyper-reduction reduced-order modeling (HE-STEP ROM) method. The proposed approach constructs a non-intrusive reduced-order model based on an element-wise stiffness evaluation procedure (E-STEP) and hyper-reduction methods. Because the E-STEP evaluates nonlinear stiffness coefficients element-by-element using cubic polynomial, numerous number of polynomial variables are required. The number of variables directly affects the computational efficiency of the online and offline stages. Therefore, to enhance efficiency of the online/offline stages, the proposed method employs hyper-reduction method. By applying hyper-reduction, the full stiffness coefficients are approximated from the stiffness coefficients evaluated at a few sampling points. Subsequently, the number of polynomial equations and variables is prominently reduced, and the efficiency of the reduced system increases. The efficiency and accuracy of the proposed approach are validated via several structural dynamic problems with geometric and material nonlinearities.
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College of Engineering (Department of Mechanical, Robotics and Energy Engineering)
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