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Abstract

By using the finite element method and a “coarse to fine” two-stage genetic algorithm as the forward calculation method and the inverse search scheme, respectively, we perform both the unconstrained and constrained optimal design of the unit cell topology of the two-dimensional square-latticed solid phononic crystals (PnCs), to maximize the relative widths of the gaps between the adjacent energy bands of the PnCs. In the constrained optimizations, the maximization is subjected to the constraint of a predefined average density. In the numerical results, the variation patterns of the optimized structures with the order of the bandgap for both the out-plane shear and the in-plane mixed elastic wave modes are presented, and the effects of both the material contrast and the predefined average density on the obtained optimal structures are discussed.

Details

Title
Topological optimization of two-dimensional phononic crystals based on the finite element method and genetic algorithm
Author
Hao-Wen, Dong 1 ; Xiao-Xing, Su 2 ; Yue-Sheng, Wang 1 ; Zhang, Chuanzeng 3 

 Institute of Engineering Mechanics, Beijing Jiaotong University, Beijing, China 
 School of Electronic and Information Engineering, Beijing Jiaotong University, Beijing, China 
 Department of Civil Engineering, University of Siegen, Siegen, Germany 
Pages
593-604
Publication year
2014
Publication date
Oct 2014
Publisher
Springer Nature B.V.
ISSN
1615147X
e-ISSN
16151488
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2262589415
Copyright
Structural and Multidisciplinary Optimization is a copyright of Springer, (2014). All Rights Reserved.