Multi-objective optimization of composite plates using lamination parameters

Laminated composite plates are extensively used in various industries due to their high stiffness-to-weight ratio and directional properties that allow optimization of the stiffness characteristics for specific applications. In multi-objective optimization problems, optimal designs for individual pe...

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Main Authors: Gokhan Serhat, Ipek Basdogan
Format: Article
Language:English
Published: Elsevier 2019-10-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519303429
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spelling doaj-77d35ce3674241818d36aa5121cde1332020-11-24T23:54:38ZengElsevierMaterials & Design0264-12752019-10-01180Multi-objective optimization of composite plates using lamination parametersGokhan Serhat0Ipek Basdogan1Corresponding author at: Max Planck Institute for Intelligent Systems, Haptic Intelligence Department, Stuttgart 70569, Germany.; Koc University, College of Engineering, Department of Mechanical Engineering, Istanbul 34450, TurkeyKoc University, College of Engineering, Department of Mechanical Engineering, Istanbul 34450, TurkeyLaminated composite plates are extensively used in various industries due to their high stiffness-to-weight ratio and directional properties that allow optimization of the stiffness characteristics for specific applications. In multi-objective optimization problems, optimal designs for individual performance metrics may be conflicting, necessitating knowledge on the design requirements for different metrics and potential trade-offs. In this paper, a multi-objective design methodology for laminated composite plates with dynamic and load-carrying requirements is presented. Lamination parameters are used to characterize laminate stiffness matrices in a compact form resulting in a convex design space. Single and multi-objective optimization studies are carried out to determine the optimal stiffness properties. For improving the dynamic performance, maximization of the fundamental frequency metric is aimed. For enhancing the load-carrying capability, buckling load and equivalent stiffness metrics are maximized. Conforming and conflicting behavior of multiple objective functions for different plate geometries, boundary conditions and load cases are presented by determining Pareto-optimal solutions. The results provide a valuable insight for multi-objective optimization of laminated composite plates and show that presented methodology can be used in the design of such structures for improving the dynamic and load-carrying performance. Keywords: Laminated composite plates, Multi-objective optimization, Lamination parameters, Fundamental frequency, Buckling load, Effective stiffnesshttp://www.sciencedirect.com/science/article/pii/S0264127519303429
collection DOAJ
language English
format Article
sources DOAJ
author Gokhan Serhat
Ipek Basdogan
spellingShingle Gokhan Serhat
Ipek Basdogan
Multi-objective optimization of composite plates using lamination parameters
Materials & Design
author_facet Gokhan Serhat
Ipek Basdogan
author_sort Gokhan Serhat
title Multi-objective optimization of composite plates using lamination parameters
title_short Multi-objective optimization of composite plates using lamination parameters
title_full Multi-objective optimization of composite plates using lamination parameters
title_fullStr Multi-objective optimization of composite plates using lamination parameters
title_full_unstemmed Multi-objective optimization of composite plates using lamination parameters
title_sort multi-objective optimization of composite plates using lamination parameters
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2019-10-01
description Laminated composite plates are extensively used in various industries due to their high stiffness-to-weight ratio and directional properties that allow optimization of the stiffness characteristics for specific applications. In multi-objective optimization problems, optimal designs for individual performance metrics may be conflicting, necessitating knowledge on the design requirements for different metrics and potential trade-offs. In this paper, a multi-objective design methodology for laminated composite plates with dynamic and load-carrying requirements is presented. Lamination parameters are used to characterize laminate stiffness matrices in a compact form resulting in a convex design space. Single and multi-objective optimization studies are carried out to determine the optimal stiffness properties. For improving the dynamic performance, maximization of the fundamental frequency metric is aimed. For enhancing the load-carrying capability, buckling load and equivalent stiffness metrics are maximized. Conforming and conflicting behavior of multiple objective functions for different plate geometries, boundary conditions and load cases are presented by determining Pareto-optimal solutions. The results provide a valuable insight for multi-objective optimization of laminated composite plates and show that presented methodology can be used in the design of such structures for improving the dynamic and load-carrying performance. Keywords: Laminated composite plates, Multi-objective optimization, Lamination parameters, Fundamental frequency, Buckling load, Effective stiffness
url http://www.sciencedirect.com/science/article/pii/S0264127519303429
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AT ipekbasdogan multiobjectiveoptimizationofcompositeplatesusinglaminationparameters
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