Level set-based topology optimisation of a compliant mechanism design using mathematical programming

We propose a structural optimisation method, based on the level set method and using mathematical programming such as the method of moving asymptotes (MMA), which we apply to the design of compliant mechanisms. A compliant mechanism is a monolithic joint-free mechanism designed to be flexible to obt...

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Main Authors: M. Otomori, T. Yamada, K. Izui, S. Nishiwaki
Format: Article
Language:English
Published: Copernicus Publications 2011-05-01
Series:Mechanical Sciences
Online Access:http://www.mech-sci.net/2/91/2011/ms-2-91-2011.pdf
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spelling doaj-8993ff96edbe4027a821c329efb6d85c2020-11-24T23:22:33ZengCopernicus PublicationsMechanical Sciences2191-91512191-916X2011-05-0121919810.5194/ms-2-91-2011Level set-based topology optimisation of a compliant mechanism design using mathematical programmingM. OtomoriT. YamadaK. IzuiS. NishiwakiWe propose a structural optimisation method, based on the level set method and using mathematical programming such as the method of moving asymptotes (MMA), which we apply to the design of compliant mechanisms. A compliant mechanism is a monolithic joint-free mechanism designed to be flexible to obtain a specified motion. In the design of compliant mechanisms, several requirements such as the direction of the deformation and stress concentrations must be considered to obtain the specified mechanical function. Topology optimisation, the most flexible type of structural optimisation, has been successfully used as a design optimisation method for compliant mechanisms, but the utility of topology optimisation results is often spoiled by a plethora of impractical designs such as structures containing grayscale areas. Level set-based topology optimisation methods are immune to the problem of grayscales since the boundaries of the optimal configuration are implicitly represented using the level set function. The proposed method updates the level set function using mathematical programming to facilitate the treatment of constraint functionals. To verify its capability, we apply our method to compliant mechanism design problems that include displacement constraints and stress constraints.http://www.mech-sci.net/2/91/2011/ms-2-91-2011.pdf
collection DOAJ
language English
format Article
sources DOAJ
author M. Otomori
T. Yamada
K. Izui
S. Nishiwaki
spellingShingle M. Otomori
T. Yamada
K. Izui
S. Nishiwaki
Level set-based topology optimisation of a compliant mechanism design using mathematical programming
Mechanical Sciences
author_facet M. Otomori
T. Yamada
K. Izui
S. Nishiwaki
author_sort M. Otomori
title Level set-based topology optimisation of a compliant mechanism design using mathematical programming
title_short Level set-based topology optimisation of a compliant mechanism design using mathematical programming
title_full Level set-based topology optimisation of a compliant mechanism design using mathematical programming
title_fullStr Level set-based topology optimisation of a compliant mechanism design using mathematical programming
title_full_unstemmed Level set-based topology optimisation of a compliant mechanism design using mathematical programming
title_sort level set-based topology optimisation of a compliant mechanism design using mathematical programming
publisher Copernicus Publications
series Mechanical Sciences
issn 2191-9151
2191-916X
publishDate 2011-05-01
description We propose a structural optimisation method, based on the level set method and using mathematical programming such as the method of moving asymptotes (MMA), which we apply to the design of compliant mechanisms. A compliant mechanism is a monolithic joint-free mechanism designed to be flexible to obtain a specified motion. In the design of compliant mechanisms, several requirements such as the direction of the deformation and stress concentrations must be considered to obtain the specified mechanical function. Topology optimisation, the most flexible type of structural optimisation, has been successfully used as a design optimisation method for compliant mechanisms, but the utility of topology optimisation results is often spoiled by a plethora of impractical designs such as structures containing grayscale areas. Level set-based topology optimisation methods are immune to the problem of grayscales since the boundaries of the optimal configuration are implicitly represented using the level set function. The proposed method updates the level set function using mathematical programming to facilitate the treatment of constraint functionals. To verify its capability, we apply our method to compliant mechanism design problems that include displacement constraints and stress constraints.
url http://www.mech-sci.net/2/91/2011/ms-2-91-2011.pdf
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AT tyamada levelsetbasedtopologyoptimisationofacompliantmechanismdesignusingmathematicalprogramming
AT kizui levelsetbasedtopologyoptimisationofacompliantmechanismdesignusingmathematicalprogramming
AT snishiwaki levelsetbasedtopologyoptimisationofacompliantmechanismdesignusingmathematicalprogramming
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