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Published in: Structural and Multidisciplinary Optimization 1/2017

04-05-2016 | INDUSTRIAL APPLICATION

Component allocation and supporting frame topology optimization using global search algorithm and morphing mesh

Authors: Mahsan Bakhtiarinejad, Soobum Lee, James Joo

Published in: Structural and Multidisciplinary Optimization | Issue 1/2017

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Abstract

This paper proposes a stepwise structural design methodology where the component layout and the supporting frame structure is sequentially found using global search algorithm and topology optimization. In the component layout design step, the genetic algorithm is used to handle system level multiobjective problem where the optimal locations of multiple components are searched. Based on the layout design searched, a new Topology Optimization method based on Morphing Mesh technique (TOMM) is applied to obtain the frame structure topology while adjusting the component locations simultaneously. TOMM is based on the SIMP method with morphable FE mesh, and component relocation and frame design is simultaneously done using two kinds of design variables: topology design variables and morphing design variables. Two examples are studied in this paper. First, TOMM method is applied to a simple cantilever beam problem to validate the proposed design methodology and justify inclusion of morphing design variables. Then the stepwise design methodology is applied to the commercial Boeing 757 aircraft wing design problem for the optimal placement of multiple components (subsystems) and the optimal supporting frame structure around them. Additional constraint on the weight balance is included and the corresponding design sensitivity is formulated. The benefit of using the global search algorithm (genetic algorithm) is discussed in terms of finding the global optimum and independency of initial design guess. It has been proved that the proposed stepwise method can provide innovative design insight for complex modern engineering systems with multi-component structures.

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Appendix
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Literature
go back to reference Bendsoe MP, Sigmund O (2003) Topology optimization: theory, methods and applications. Springer Science & Business Media Bendsoe MP, Sigmund O (2003) Topology optimization: theory, methods and applications. Springer Science & Business Media
go back to reference Blake W (2009) Jet transport performance methods Blake W (2009) Jet transport performance methods
go back to reference Choi J-S, Zhao L, Park G-J, Agrawal SK, Kolonay RK (2011) Enhancement of a flapping wing using path and dynamic topology optimization. AIAA J 49:2616–2626. doi:10.2514/1.J050834 CrossRef Choi J-S, Zhao L, Park G-J, Agrawal SK, Kolonay RK (2011) Enhancement of a flapping wing using path and dynamic topology optimization. AIAA J 49:2616–2626. doi:10.​2514/​1.​J050834 CrossRef
go back to reference Cook RD (2007) Concepts and applications of finite element analysis. Wiley Cook RD (2007) Concepts and applications of finite element analysis. Wiley
go back to reference Guo X, Zhang W, Zhong W (2014) Doing topology optimization explicitly and geometrically—a new moving morphable components based framework. J Appl Mech 81:081009CrossRef Guo X, Zhang W, Zhong W (2014) Doing topology optimization explicitly and geometrically—a new moving morphable components based framework. J Appl Mech 81:081009CrossRef
go back to reference Hsu M-H, Hsu Y-L (2005) Interpreting three-dimensional structural topology optimization results. Comput Struct 83:327–337CrossRef Hsu M-H, Hsu Y-L (2005) Interpreting three-dimensional structural topology optimization results. Comput Struct 83:327–337CrossRef
go back to reference Hsu Y-L, Hsu M-S, Chen C-T (2001) Interpreting results from topology optimization using density contours. Comput Struct 79:1049–1058CrossRef Hsu Y-L, Hsu M-S, Chen C-T (2001) Interpreting results from topology optimization using density contours. Comput Struct 79:1049–1058CrossRef
go back to reference HyperWorks (2014) v11.0 edn. Altair Engineering Inc., Troy HyperWorks (2014) v11.0 edn. Altair Engineering Inc., Troy
go back to reference Krog L, Tucker A, Kemp M, Boyd R (2004) Topology optimisation of aircraft wing box ribs. In: 10th AIAA/ISSMO Multidisciplinary Analysis and Optimization Conference. Multidisciplinary Analysis Optimization Conferences. American Institute of Aeronautics and Astronautics Krog L, Tucker A, Kemp M, Boyd R (2004) Topology optimisation of aircraft wing box ribs. In: 10th AIAA/ISSMO Multidisciplinary Analysis and Optimization Conference. Multidisciplinary Analysis Optimization Conferences. American Institute of Aeronautics and Astronautics
go back to reference Krog L, Tucker A, Rollema G (2008) Application of topology, sizing and shape optimization methods to optimal design of aircraft components. In: 2002 Krog L, Tucker A, Rollema G (2008) Application of topology, sizing and shape optimization methods to optimal design of aircraft components. In: 2002
go back to reference Lee S, Kwak BM, Kim IY (2007) Smooth boundary topology optimization using B-spline and hole generation. Int J CAD/CAM 7 Lee S, Kwak BM, Kim IY (2007) Smooth boundary topology optimization using B-spline and hole generation. Int J CAD/CAM 7
go back to reference Oktay E, Akay HU, Merttopcuoglu O (2011) Parallelized structural topology optimization and CFD coupling for design of aircraft wing structures. Comput Fluids 49:141–145MathSciNetCrossRefMATH Oktay E, Akay HU, Merttopcuoglu O (2011) Parallelized structural topology optimization and CFD coupling for design of aircraft wing structures. Comput Fluids 49:141–145MathSciNetCrossRefMATH
go back to reference Stanford B, Beran P (2010) Conceptual Design of Compliant Mechanisms for Flapping Wings with Topology Optimization. In: 13th AIAA/ISSMO Multidisciplinary Analysis Optimization Conference. Multidisciplinary Analysis Optimization Conferences. American Institute of Aeronautics and Astronautics Stanford B, Beran P (2010) Conceptual Design of Compliant Mechanisms for Flapping Wings with Topology Optimization. In: 13th AIAA/ISSMO Multidisciplinary Analysis Optimization Conference. Multidisciplinary Analysis Optimization Conferences. American Institute of Aeronautics and Astronautics
go back to reference Stanford B, Ifju P (2009b) Multi-objective topology optimization of wing skeletons for aeroelastic membrane structures. Int J Micro Air Veh 1:51CrossRef Stanford B, Ifju P (2009b) Multi-objective topology optimization of wing skeletons for aeroelastic membrane structures. Int J Micro Air Veh 1:51CrossRef
go back to reference Xia L, Zhu J, Zhang W (2012a) Sensitivity analysis with the modified Heaviside function for the optimal layout design of multi-component systems. Comput Methods Appl Mech Eng 241–244:142–154MathSciNetCrossRef Xia L, Zhu J, Zhang W (2012a) Sensitivity analysis with the modified Heaviside function for the optimal layout design of multi-component systems. Comput Methods Appl Mech Eng 241–244:142–154MathSciNetCrossRef
go back to reference Xia L, Zhu J, Zhang W (2012b) A superelement formulation for the efficient layout design of complex multi-component system. Struct Multidiscip Optim 45:643–655MathSciNetCrossRefMATH Xia L, Zhu J, Zhang W (2012b) A superelement formulation for the efficient layout design of complex multi-component system. Struct Multidiscip Optim 45:643–655MathSciNetCrossRefMATH
go back to reference Zhang W, Zhang Q (2009) Finite-circle method for component approximation and packing design optimization. Eng Optim 41:971–987CrossRef Zhang W, Zhang Q (2009) Finite-circle method for component approximation and packing design optimization. Eng Optim 41:971–987CrossRef
go back to reference Zhang W, Xia L, Zhu J, Zhang Q (2011) Some recent advances in the integrated layout design of multicomponent systems. J Mech Des 133:104503CrossRef Zhang W, Xia L, Zhu J, Zhang Q (2011) Some recent advances in the integrated layout design of multicomponent systems. J Mech Des 133:104503CrossRef
go back to reference Zhu JH, Beckers P, Zhang WH (2010) On the multi-component layout design with inertial force. J Comput Appl Math 234:2222–2230CrossRefMATH Zhu JH, Beckers P, Zhang WH (2010) On the multi-component layout design with inertial force. J Comput Appl Math 234:2222–2230CrossRefMATH
go back to reference Zhu J-H, Gao H-H, Zhang W-H, Zhou Y (2014) A Multi-point constraints based integrated layout and topology optimization design of multi-component systems. Struct Multidiscip Optim 51:397–407. doi:10.1007/s00158-014-1134-7 CrossRef Zhu J-H, Gao H-H, Zhang W-H, Zhou Y (2014) A Multi-point constraints based integrated layout and topology optimization design of multi-component systems. Struct Multidiscip Optim 51:397–407. doi:10.​1007/​s00158-014-1134-7 CrossRef
Metadata
Title
Component allocation and supporting frame topology optimization using global search algorithm and morphing mesh
Authors
Mahsan Bakhtiarinejad
Soobum Lee
James Joo
Publication date
04-05-2016
Publisher
Springer Berlin Heidelberg
Published in
Structural and Multidisciplinary Optimization / Issue 1/2017
Print ISSN: 1615-147X
Electronic ISSN: 1615-1488
DOI
https://doi.org/10.1007/s00158-016-1468-4

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