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Published in: Structural and Multidisciplinary Optimization 3/2014

01-03-2014 | Research Paper

Shape and topology optimization for closed liquid cell materials using extended multiscale finite element method

Authors: J. Lv, H. W. Zhang, B. S. Chen

Published in: Structural and Multidisciplinary Optimization | Issue 3/2014

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Abstract

A new multiscale shape and topology optimization method is presented to design closed liquid cell materials based on the extended multiscale finite element method, which directly captures the small scale features to the large scale computation. The multiscale optimization method firstly focuses on seeking the optimum geometrical parameters and volume expansion of the fluid in the closed liquid cells in the microscale level in terms of maximizing the macroscale mechanical response of the structure. Furthermore, a new hierarchical multiscale optimization method is developed to optimize the macroscale distributions of closed liquid cells and the microscale shape of the fluid inclusion in the cells. In the macroscale level of the multiscale optimization method, the macroscale design domain is discretized by the multiscale coarse elements, while the shape of the fluid inclusions is set to be the design parameters in the microscale level. This method is firstly utilized to minimize the system compliance of the closed liquid cell structure. Moreover, due to the fact that non-uniform volume expansions of the fluid in cells can induce the elastic action, the multiscale optimization method is further extended to design biomimetic compliant actuators of the closed liquid cell materials. The multiscale optimization methods developed are implemented in the FE-package SiPESC, and the numerical examples are carried out to validate the accuracy of the methods proposed.

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Literature
go back to reference Andreasen CS (2011) Multiscale topology optimization of solid and fluid structures. Dept of Mechanical Engineering, Technical University of Denmark, PhD thesis Andreasen CS (2011) Multiscale topology optimization of solid and fluid structures. Dept of Mechanical Engineering, Technical University of Denmark, PhD thesis
go back to reference Andreasen C, Sigmund O (2011) Saturated poroelastic actuators generated by topology optimization. Struct Multidiscip Optim 43:693–706CrossRefMATHMathSciNet Andreasen C, Sigmund O (2011) Saturated poroelastic actuators generated by topology optimization. Struct Multidiscip Optim 43:693–706CrossRefMATHMathSciNet
go back to reference Andreassen E, Clausen A, Schevenels M, Lazarov BS, Sigmund O (2011) Efficient topology optimization in MATLAB using 88 lines of code. Struct Multidiscip Optim 43:1–16CrossRefMATH Andreassen E, Clausen A, Schevenels M, Lazarov BS, Sigmund O (2011) Efficient topology optimization in MATLAB using 88 lines of code. Struct Multidiscip Optim 43:1–16CrossRefMATH
go back to reference Bendsoe MP, Kikuchi N (1988) Generating optimal topologies in structural design using a homogenization method. Comput Methods Appl Mech Eng 71:197–224CrossRefMathSciNet Bendsoe MP, Kikuchi N (1988) Generating optimal topologies in structural design using a homogenization method. Comput Methods Appl Mech Eng 71:197–224CrossRefMathSciNet
go back to reference Bendsøe MP, Sigmund O (2003) Topology optimization. Theory, methods, and applications. Springer, New York Bendsøe MP, Sigmund O (2003) Topology optimization. Theory, methods, and applications. Springer, New York
go back to reference Chen BS, Liu G, Kang J, Li YP (2007) Design optimization of stiffened storage tank for spacecraft. Struct Multidiscip Optim 36:83–92CrossRef Chen BS, Liu G, Kang J, Li YP (2007) Design optimization of stiffened storage tank for spacecraft. Struct Multidiscip Optim 36:83–92CrossRef
go back to reference Coelho PG, Fernandes PR, Guedes JM (2008) A hierarchical model for concurrent material and topology optimization of three-dimensional structures. Struct Multidiscip Optim 35:107–115CrossRef Coelho PG, Fernandes PR, Guedes JM (2008) A hierarchical model for concurrent material and topology optimization of three-dimensional structures. Struct Multidiscip Optim 35:107–115CrossRef
go back to reference Freeman E, Weiland LM (2009) High energy density nastic materials: parameters for tailoring active response. J Intell Mater Syst Struct 20(2):233–243CrossRef Freeman E, Weiland LM (2009) High energy density nastic materials: parameters for tailoring active response. J Intell Mater Syst Struct 20(2):233–243CrossRef
go back to reference Georget MDR, Smith AC, Waldron KW (2003) Modeling of carrot tissue as a fluid-filled foam. J Mater Sci 38(9):1933–1938CrossRef Georget MDR, Smith AC, Waldron KW (2003) Modeling of carrot tissue as a fluid-filled foam. J Mater Sci 38(9):1933–1938CrossRef
go back to reference Giurgiutiu V, Matthews L, Leo DJ, et al (2005) Concepts for power and energy analysis in nastic structures. Proceedings of ASME-IMECE. International mechanical engineering conference and exposition, Orlando Giurgiutiu V, Matthews L, Leo DJ, et al (2005) Concepts for power and energy analysis in nastic structures. Proceedings of ASME-IMECE. International mechanical engineering conference and exposition, Orlando
go back to reference Guest JK, Prévost JH (2006) Optimizing multifunctional materials: design of microstructures for maximized stiffness and fluid permeability. Int J Solids Struct 43:7028–7047CrossRefMATH Guest JK, Prévost JH (2006) Optimizing multifunctional materials: design of microstructures for maximized stiffness and fluid permeability. Int J Solids Struct 43:7028–7047CrossRefMATH
go back to reference Guest JK, Prévost JH (2007) Design of maximum permeability material structures. Comput Methods Appl Mech 196:1006–1017CrossRefMATH Guest JK, Prévost JH (2007) Design of maximum permeability material structures. Comput Methods Appl Mech 196:1006–1017CrossRefMATH
go back to reference Hartmann C, Delgado A (2004) Numerical simulation of the mechanics of yeast cell under high hydrostatic pressure. J Biomech 37:977–987CrossRef Hartmann C, Delgado A (2004) Numerical simulation of the mechanics of yeast cell under high hydrostatic pressure. J Biomech 37:977–987CrossRef
go back to reference Hartmann C, Mathmann K, Delgado A (2006) Mechanical stresses in cellular structures under high hydrostatic pressure. Innov Food Sci Emerg 7:1–12CrossRef Hartmann C, Mathmann K, Delgado A (2006) Mechanical stresses in cellular structures under high hydrostatic pressure. Innov Food Sci Emerg 7:1–12CrossRef
go back to reference Hou TY, Wu XH (1997) A multiscale finite element method for elliptic problems in composite materials and porous media. J Comput Phys 134:169–189CrossRefMATHMathSciNet Hou TY, Wu XH (1997) A multiscale finite element method for elliptic problems in composite materials and porous media. J Comput Phys 134:169–189CrossRefMATHMathSciNet
go back to reference Hou TY, Wu XH, Cai ZQ (1999) Convergence of a multiscale finite element method for elliptic problems with rapidly oscillating coefficients. Math Comput 68:913–943CrossRefMATHMathSciNet Hou TY, Wu XH, Cai ZQ (1999) Convergence of a multiscale finite element method for elliptic problems with rapidly oscillating coefficients. Math Comput 68:913–943CrossRefMATHMathSciNet
go back to reference Ken-ichiro M, Kozo O, Masanori S (1991) Finite element modeling of forming process of solid metal with liquid phase. J Mater Process Technol 27:111–118CrossRef Ken-ichiro M, Kozo O, Masanori S (1991) Finite element modeling of forming process of solid metal with liquid phase. J Mater Process Technol 27:111–118CrossRef
go back to reference Liu L, Yan J, Cheng GD (2008) Optimum structure with homogeneous optimum truss-like material. Comput Struct 86:1417–1425CrossRef Liu L, Yan J, Cheng GD (2008) Optimum structure with homogeneous optimum truss-like material. Comput Struct 86:1417–1425CrossRef
go back to reference Luo Z, Tong LY, Ma HT (2009) Shape and topology optimization for electrothermomechanical microactuators using level set methods. J Comput Phys 228:3173–3181CrossRefMathSciNet Luo Z, Tong LY, Ma HT (2009) Shape and topology optimization for electrothermomechanical microactuators using level set methods. J Comput Phys 228:3173–3181CrossRefMathSciNet
go back to reference Ma LH, Rolfe BF, Yang QS, Yang CH (2011) The configuration evolution and macroscopic elasticity of fluid-filled closed cell composites: micromechanics and multiscale homogenization modeling. CMES-Comput Model Eng 72(2):131–158 Ma LH, Rolfe BF, Yang QS, Yang CH (2011) The configuration evolution and macroscopic elasticity of fluid-filled closed cell composites: micromechanics and multiscale homogenization modeling. CMES-Comput Model Eng 72(2):131–158
go back to reference Nilsson SB, Hertz CH, Falk S (1958) On the relation between turgor pressure and tissue rigidity II. Physiol Plant 11:818–837CrossRef Nilsson SB, Hertz CH, Falk S (1958) On the relation between turgor pressure and tissue rigidity II. Physiol Plant 11:818–837CrossRef
go back to reference Niu B, Yan J, Cheng GD (2009) Optimum structure with homogeneous optimum cellular material for maximum fundamental frequency. Struct Multidiscip Optim 39:115–132CrossRef Niu B, Yan J, Cheng GD (2009) Optimum structure with homogeneous optimum cellular material for maximum fundamental frequency. Struct Multidiscip Optim 39:115–132CrossRef
go back to reference O’Connell R, Budiansky B (1974) Seismic velocities in dry and saturated cracked solids. J Geophy Res 79:5412–5426CrossRef O’Connell R, Budiansky B (1974) Seismic velocities in dry and saturated cracked solids. J Geophy Res 79:5412–5426CrossRef
go back to reference Ozgur M, Mullen RL, Welsch G (1996) Analysis of closed cell metal composites. Acta Mater 44(5):2115–2126CrossRef Ozgur M, Mullen RL, Welsch G (1996) Analysis of closed cell metal composites. Acta Mater 44(5):2115–2126CrossRef
go back to reference Rodrigues H, Guedes JM, Bendsoe MP (2002) Hierachical optimization of material and structure. Struct Multidiscip Optim 24:1–10CrossRef Rodrigues H, Guedes JM, Bendsoe MP (2002) Hierachical optimization of material and structure. Struct Multidiscip Optim 24:1–10CrossRef
go back to reference Rohan E (2006) Modeling large-deformation-induced microflow in soft biological tissues. Theor Comput Fluid Dyn 20(4):251–276CrossRefMATH Rohan E (2006) Modeling large-deformation-induced microflow in soft biological tissues. Theor Comput Fluid Dyn 20(4):251–276CrossRefMATH
go back to reference Sigmund O (2001a) Design of multiphysics actuators using topology optimization-Part I: One-material structures. Comput Methods Appl Mech Eng 190:6577–6604CrossRefMATH Sigmund O (2001a) Design of multiphysics actuators using topology optimization-Part I: One-material structures. Comput Methods Appl Mech Eng 190:6577–6604CrossRefMATH
go back to reference Sigmund O (2001b) A 99 line topology optimization code written in Matlab. Struct Multidiscip Optim 21:120–127CrossRef Sigmund O (2001b) A 99 line topology optimization code written in Matlab. Struct Multidiscip Optim 21:120–127CrossRef
go back to reference Smith AE, Moxham KE, Middelberg APJ (1998) On uniquely determining cell-wall material properties with the compression experiment. Chem Eng Sci 53:3913–3922CrossRef Smith AE, Moxham KE, Middelberg APJ (1998) On uniquely determining cell-wall material properties with the compression experiment. Chem Eng Sci 53:3913–3922CrossRef
go back to reference Stenson JD, Thomas CR, Hartley P (2009) Modelling the mechanical properties of yeast cells. Chem Eng Sci 64:1892–1903CrossRef Stenson JD, Thomas CR, Hartley P (2009) Modelling the mechanical properties of yeast cells. Chem Eng Sci 64:1892–1903CrossRef
go back to reference Sundaresan VB, Leo DJ (2006) Chemo-mechanical model for actuation based on biological membranes. J Intell Mater Syst Struct 17:863–870CrossRef Sundaresan VB, Leo DJ (2006) Chemo-mechanical model for actuation based on biological membranes. J Intell Mater Syst Struct 17:863–870CrossRef
go back to reference Suquet PM (1987) Elements of homogenization theory for inelastic solid mechanics. In: Sanchez-Palencia E, Zaoui A (eds) Homogenization techniques for composite media. Springer, Berlin, pp 194–275 Suquet PM (1987) Elements of homogenization theory for inelastic solid mechanics. In: Sanchez-Palencia E, Zaoui A (eds) Homogenization techniques for composite media. Springer, Berlin, pp 194–275
go back to reference Svanberg K (1987) The method of moving asymptotes-a new method for structural optimization. Int J Numer Methods Eng 24(2):359–373CrossRefMATHMathSciNet Svanberg K (1987) The method of moving asymptotes-a new method for structural optimization. Int J Numer Methods Eng 24(2):359–373CrossRefMATHMathSciNet
go back to reference Terada K, Kikuchi N (2001) A class of general algorithms for multi-scale analyses of heterogeneous media. Comput Methods Appl Mech 190:5427–5464CrossRefMATHMathSciNet Terada K, Kikuchi N (2001) A class of general algorithms for multi-scale analyses of heterogeneous media. Comput Methods Appl Mech 190:5427–5464CrossRefMATHMathSciNet
go back to reference Yan J, Cheng GD, Liu L (2008) A uniform optimum material based model for concurrent optimization of thermoelastic structures and materials. Int J Simul Multidiscip Des Optim 2:259–266CrossRef Yan J, Cheng GD, Liu L (2008) A uniform optimum material based model for concurrent optimization of thermoelastic structures and materials. Int J Simul Multidiscip Des Optim 2:259–266CrossRef
go back to reference Yang CF, Chen BS, Zhang S, Li YP, Zhang HW (2011) Design and implementation of general integrated optimization design software SiPESC.OPT. Comput Aided Eng 20(4):42–48(in Chinese) Yang CF, Chen BS, Zhang S, Li YP, Zhang HW (2011) Design and implementation of general integrated optimization design software SiPESC.OPT. Comput Aided Eng 20(4):42–48(in Chinese)
go back to reference Zhang HW, Lv J (2011) Two-scale model for mechanical analysis of nastic materials and structures. J Intell Mater Syst Struct 22:593–609CrossRef Zhang HW, Lv J (2011) Two-scale model for mechanical analysis of nastic materials and structures. J Intell Mater Syst Struct 22:593–609CrossRef
go back to reference Zhang HW, Lv J, Zheng YG (2010a) A new multiscale computational method for mechanical analysis of closed liquid cell materials. CMES-Comput Model Eng 68(1):55–93 Zhang HW, Lv J, Zheng YG (2010a) A new multiscale computational method for mechanical analysis of closed liquid cell materials. CMES-Comput Model Eng 68(1):55–93
go back to reference Zhang HW, Wu JK, Lv J, Fu ZD (2010b) Extended multiscale finite element method for mechanical analysis of heterogeneous materials. Acta Mech Sinica 26:899–920CrossRefMATH Zhang HW, Wu JK, Lv J, Fu ZD (2010b) Extended multiscale finite element method for mechanical analysis of heterogeneous materials. Acta Mech Sinica 26:899–920CrossRefMATH
go back to reference Zhang HW, Chen BS, Li YP, Peng HJ (2011) Advancement of design and implementation of SiPESC for development of integrated CAE software systems. Comput Aided Eng 20(2):39–49(in Chinese) Zhang HW, Chen BS, Li YP, Peng HJ (2011) Advancement of design and implementation of SiPESC for development of integrated CAE software systems. Comput Aided Eng 20(2):39–49(in Chinese)
Metadata
Title
Shape and topology optimization for closed liquid cell materials using extended multiscale finite element method
Authors
J. Lv
H. W. Zhang
B. S. Chen
Publication date
01-03-2014
Publisher
Springer Berlin Heidelberg
Published in
Structural and Multidisciplinary Optimization / Issue 3/2014
Print ISSN: 1615-147X
Electronic ISSN: 1615-1488
DOI
https://doi.org/10.1007/s00158-013-0976-8

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