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    Fracture Toughness of Hydrogel Laminates: Experiments, Theory, and Modeling

    Source: Journal of Applied Mechanics:;2023:;volume( 091 ):;issue: 001::page 11006-1
    Author:
    Cai, Yijie
    ,
    Shen, Zihang
    ,
    Jia, Zheng
    DOI: 10.1115/1.4063144
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Possessing enhanced mechanical durability and multiple novel functions, hydrogel laminates have found wide applications in diverse areas, including stretchable and bio-integrated electronics, soft robotics, tissue engineering, and biomedical devices. In the aforementioned scenarios, hydrogels are often required to sustain large deformation without mechanical failure over a long time. Compared to the fast movement in functions design, the failure mechanism of hydrogel laminates has been much less explored and researched, as well as laminates’ fracture toughness—a key parameter characterizing their fracture behavior. To address this largely unexplored issue, this article further studies the fracture toughness of hydrogel laminates both experimentally and theoretically. A kind of modified pure-shear test suitable for measuring the fracture toughness of hydrogel laminates is proposed, which is then applied to testing a PAAm-PAA laminate’s toughness. Through theoretical analysis and numerical modeling, the experimentally observed enhancement in the fracture toughness of PAAm-PAA laminates is explained—the fracture toughness of the laminates covers the energy required for both the crack and concomitant interfacial delamination to propagate, and the theoretical predictions agree well with the experimental results. The results from this study provide quantitative guidance for understanding the fracture behavior of hydrogel laminates.
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      Fracture Toughness of Hydrogel Laminates: Experiments, Theory, and Modeling

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    contributor authorCai, Yijie
    contributor authorShen, Zihang
    contributor authorJia, Zheng
    date accessioned2024-04-24T22:30:06Z
    date available2024-04-24T22:30:06Z
    date copyright8/25/2023 12:00:00 AM
    date issued2023
    identifier issn0021-8936
    identifier otherjam_91_1_011006.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4295337
    description abstractPossessing enhanced mechanical durability and multiple novel functions, hydrogel laminates have found wide applications in diverse areas, including stretchable and bio-integrated electronics, soft robotics, tissue engineering, and biomedical devices. In the aforementioned scenarios, hydrogels are often required to sustain large deformation without mechanical failure over a long time. Compared to the fast movement in functions design, the failure mechanism of hydrogel laminates has been much less explored and researched, as well as laminates’ fracture toughness—a key parameter characterizing their fracture behavior. To address this largely unexplored issue, this article further studies the fracture toughness of hydrogel laminates both experimentally and theoretically. A kind of modified pure-shear test suitable for measuring the fracture toughness of hydrogel laminates is proposed, which is then applied to testing a PAAm-PAA laminate’s toughness. Through theoretical analysis and numerical modeling, the experimentally observed enhancement in the fracture toughness of PAAm-PAA laminates is explained—the fracture toughness of the laminates covers the energy required for both the crack and concomitant interfacial delamination to propagate, and the theoretical predictions agree well with the experimental results. The results from this study provide quantitative guidance for understanding the fracture behavior of hydrogel laminates.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleFracture Toughness of Hydrogel Laminates: Experiments, Theory, and Modeling
    typeJournal Paper
    journal volume91
    journal issue1
    journal titleJournal of Applied Mechanics
    identifier doi10.1115/1.4063144
    journal fristpage11006-1
    journal lastpage11006-7
    page7
    treeJournal of Applied Mechanics:;2023:;volume( 091 ):;issue: 001
    contenttypeFulltext
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