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    Discovering Sequenced Origami Folding Through Nonlinear Mechanics and Topology Optimization

    Source: Journal of Mechanical Design:;2019:;volume( 141 ):;issue: 004::page 41401
    Author:
    Gillman, Andrew S.
    ,
    Fuchi, Kazuko
    ,
    Buskohl, Philip R.
    DOI: 10.1115/1.4041782
    Publisher: American Society of Mechanical Engineers (ASME)
    Abstract: Origami folding provides a novel method to transform two-dimensional (2D) sheets into complex functional structures. However, the enormity of the foldable design space necessitates development of algorithms to efficiently discover new origami fold patterns with specific performance objectives. To address this challenge, this work combines a recently developed efficient modified truss finite element model with a ground structure-based topology optimization framework. A nonlinear mechanics model is required to model the sequenced motion and large folding common in the actuation of origami structures. These highly nonlinear motions limit the ability to define convex objective functions, and parallelizable evolutionary optimization algorithms for traversing nonconvex origami design problems are developed and considered. The ability of this framework to discover fold topologies that maximize targeted actuation is verified for the well-known “Chomper” and “Square Twist” patterns. A simple twist-based design is also discovered using the verified framework. Through these case studies, the role of critical points and bifurcations emanating from sequenced deformation mechanisms (including interplay of folding, facet bending, and stretching) on design optimization is analyzed. In addition, the performance of both gradient and evolutionary optimization algorithms are explored, and genetic algorithms (GAs) consistently yield solutions with better performance given the apparent nonconvexity of the response-design space.
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      Discovering Sequenced Origami Folding Through Nonlinear Mechanics and Topology Optimization

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    contributor authorGillman, Andrew S.
    contributor authorFuchi, Kazuko
    contributor authorBuskohl, Philip R.
    date accessioned2019-09-18T09:07:52Z
    date available2019-09-18T09:07:52Z
    date copyright1/11/2019 12:00:00 AM
    date issued2019
    identifier issn1050-0472
    identifier othermd_141_04_041401.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4259219
    description abstractOrigami folding provides a novel method to transform two-dimensional (2D) sheets into complex functional structures. However, the enormity of the foldable design space necessitates development of algorithms to efficiently discover new origami fold patterns with specific performance objectives. To address this challenge, this work combines a recently developed efficient modified truss finite element model with a ground structure-based topology optimization framework. A nonlinear mechanics model is required to model the sequenced motion and large folding common in the actuation of origami structures. These highly nonlinear motions limit the ability to define convex objective functions, and parallelizable evolutionary optimization algorithms for traversing nonconvex origami design problems are developed and considered. The ability of this framework to discover fold topologies that maximize targeted actuation is verified for the well-known “Chomper” and “Square Twist” patterns. A simple twist-based design is also discovered using the verified framework. Through these case studies, the role of critical points and bifurcations emanating from sequenced deformation mechanisms (including interplay of folding, facet bending, and stretching) on design optimization is analyzed. In addition, the performance of both gradient and evolutionary optimization algorithms are explored, and genetic algorithms (GAs) consistently yield solutions with better performance given the apparent nonconvexity of the response-design space.
    publisherAmerican Society of Mechanical Engineers (ASME)
    titleDiscovering Sequenced Origami Folding Through Nonlinear Mechanics and Topology Optimization
    typeJournal Paper
    journal volume141
    journal issue4
    journal titleJournal of Mechanical Design
    identifier doi10.1115/1.4041782
    journal fristpage41401
    journal lastpage041401-11
    treeJournal of Mechanical Design:;2019:;volume( 141 ):;issue: 004
    contenttypeFulltext
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