A particle swarm optimization and coupled generalized differential quadrature element methods with genetic algorithm for stability analysis of the laminated microsystems

In this paper, an attempt is made to extend a linear two-dimensional model for stability analysis of the laminated annular microplate subject to external excitation. A new approach called hybrid optimization is introduced to solve optimization problems with a high sensitive objective function to dec...

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Published inEngineering with computers Vol. 38; no. Suppl 4; pp. 3251 - 3268
Main Author Sun, Hua
Format Journal Article
LanguageEnglish
Published London Springer London 01.10.2022
Springer Nature B.V
Subjects
Online AccessGet full text
ISSN0177-0667
1435-5663
DOI10.1007/s00366-021-01455-y

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Abstract In this paper, an attempt is made to extend a linear two-dimensional model for stability analysis of the laminated annular microplate subject to external excitation. A new approach called hybrid optimization is introduced to solve optimization problems with a high sensitive objective function to decline computational costs and increase the predicted optimum results accuracy. Regarding this issue, generalized differential quadrature element method (GDQEM), particle swarm optimization (PSO), as well as genetic algorithm (GA) methods are coupled to improve the dynamic stability of the annular microsystems via finding an optimum frequency and fiber angle of layers simultaneously. Higher-order shear deformation theory (HSDT) and Hamilton’s principle are taken into consideration for the exact derivation of the general linear governing equations and boundary conditions of the axisymmetric laminated annular plate. Also, modified couple stress theory (MCST) is presented for presenting the size-dependency of the current microsystem. The GDQEM is used to solve the governing equations of the microsystem via its boundary domains. To enhance the genetic algorithms’ performance for solving equations, the optimizer approach of particle swarm has been employed as a GA’s operator. Precise convergence and practicality of the suggested mixed-method have been disclosed. Moreover, we would have proven that for achieving the convergence PSO’s and GA’s outcomes, we have to apply higher than fifteen iterations.
AbstractList In this paper, an attempt is made to extend a linear two-dimensional model for stability analysis of the laminated annular microplate subject to external excitation. A new approach called hybrid optimization is introduced to solve optimization problems with a high sensitive objective function to decline computational costs and increase the predicted optimum results accuracy. Regarding this issue, generalized differential quadrature element method (GDQEM), particle swarm optimization (PSO), as well as genetic algorithm (GA) methods are coupled to improve the dynamic stability of the annular microsystems via finding an optimum frequency and fiber angle of layers simultaneously. Higher-order shear deformation theory (HSDT) and Hamilton’s principle are taken into consideration for the exact derivation of the general linear governing equations and boundary conditions of the axisymmetric laminated annular plate. Also, modified couple stress theory (MCST) is presented for presenting the size-dependency of the current microsystem. The GDQEM is used to solve the governing equations of the microsystem via its boundary domains. To enhance the genetic algorithms’ performance for solving equations, the optimizer approach of particle swarm has been employed as a GA’s operator. Precise convergence and practicality of the suggested mixed-method have been disclosed. Moreover, we would have proven that for achieving the convergence PSO’s and GA’s outcomes, we have to apply higher than fifteen iterations.
Author Sun, Hua
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CitedBy_id crossref_primary_10_1007_s12008_025_02270_1
crossref_primary_10_3390_app131810306
crossref_primary_10_1115_1_4062979
crossref_primary_10_1007_s11082_023_05331_5
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Keywords Iteration algorithm
Frequency
Annular microsystem
Higher-order shear deformation theory
Genetic algorithm
Particle swarm optimization
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Snippet In this paper, an attempt is made to extend a linear two-dimensional model for stability analysis of the laminated annular microplate subject to external...
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SubjectTerms Annular plates
Boundary conditions
CAE) and Design
Calculus of Variations and Optimal Control; Optimization
Classical Mechanics
Computer Science
Computer-Aided Engineering (CAD
Control
Convergence
Dimensional stability
Dynamic stability
Genetic algorithms
Hamilton's principle
Laminates
Math. Applications in Chemistry
Mathematical and Computational Engineering
Operators (mathematics)
Optimization
Original Article
Particle swarm optimization
Quadratures
Shear deformation
Stability analysis
Systems Theory
Two dimensional analysis
Two dimensional models
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Title A particle swarm optimization and coupled generalized differential quadrature element methods with genetic algorithm for stability analysis of the laminated microsystems
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