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    Shape Programming of Porous Bilayer Hydrogel Structures

    Source: Journal of Applied Mechanics:;2024:;volume( 091 ):;issue: 008::page 81010-1
    Author:
    Wan, Huanhuan
    ,
    Chang, Jiaying
    ,
    Ye, Fuhua
    ,
    Fan, Zhichao
    DOI: 10.1115/1.4065626
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Shape-programmable materials have garnered significant attention for their ability to morph into complex three-dimensional (3D) configurations under external stimuli, with critical applications in the fields of biomedical engineering, soft robotics, and sensing technologies. A current challenge lies in determining the geometric parameters of the initial two-dimensional (2D) structure and the intensity of the external stimulus required to achieve a target 3D shape. In this work, we introduce a novel inverse design strategy based on hole-pattern engineering. Utilizing a temperature-sensitive bilayer hydrogel with differing coefficients of thermal expansion in each layer, we achieve controlled bending deformations by varying the porosity distribution in one of the layers. Drawing on the Timoshenko theory on bimetallic beam, we establish a quantitative relationship between the relative density and curvature, allowing for the hole distribution of the initial structure to be tailored to the desired curvature. We demonstrate the efficacy of our inverse design approach with several prototypical 3D structures, including variable-curvature strip and ellipsoidal surface, validated through finite element simulations and experimental trials. This strategy paves the way for advanced fabrication techniques in developing smart materials and devices with programmable shapes.
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      Shape Programming of Porous Bilayer Hydrogel Structures

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4303164
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    contributor authorWan, Huanhuan
    contributor authorChang, Jiaying
    contributor authorYe, Fuhua
    contributor authorFan, Zhichao
    date accessioned2024-12-24T19:01:43Z
    date available2024-12-24T19:01:43Z
    date copyright6/6/2024 12:00:00 AM
    date issued2024
    identifier issn0021-8936
    identifier otherjam_91_8_081010.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303164
    description abstractShape-programmable materials have garnered significant attention for their ability to morph into complex three-dimensional (3D) configurations under external stimuli, with critical applications in the fields of biomedical engineering, soft robotics, and sensing technologies. A current challenge lies in determining the geometric parameters of the initial two-dimensional (2D) structure and the intensity of the external stimulus required to achieve a target 3D shape. In this work, we introduce a novel inverse design strategy based on hole-pattern engineering. Utilizing a temperature-sensitive bilayer hydrogel with differing coefficients of thermal expansion in each layer, we achieve controlled bending deformations by varying the porosity distribution in one of the layers. Drawing on the Timoshenko theory on bimetallic beam, we establish a quantitative relationship between the relative density and curvature, allowing for the hole distribution of the initial structure to be tailored to the desired curvature. We demonstrate the efficacy of our inverse design approach with several prototypical 3D structures, including variable-curvature strip and ellipsoidal surface, validated through finite element simulations and experimental trials. This strategy paves the way for advanced fabrication techniques in developing smart materials and devices with programmable shapes.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleShape Programming of Porous Bilayer Hydrogel Structures
    typeJournal Paper
    journal volume91
    journal issue8
    journal titleJournal of Applied Mechanics
    identifier doi10.1115/1.4065626
    journal fristpage81010-1
    journal lastpage81010-10
    page10
    treeJournal of Applied Mechanics:;2024:;volume( 091 ):;issue: 008
    contenttypeFulltext
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