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    A Strain Rate-Dependent Constitutive Model for Göttingen Minipig Cerebral Arteries

    Source: Journal of Biomechanical Engineering:;2022:;volume( 144 ):;issue: 008::page 81007-1
    Author:
    Pearson, Noah
    ,
    Boiczyk, Gregory M.
    ,
    Kote, Vivek Bhaskar
    ,
    Sundaramurthy, Aravind
    ,
    Subramaniam, Dhananjay Radhakrishnan
    ,
    Rubio, Jose E.
    ,
    Unnikrishnan, Ginu
    ,
    Reifman, Jaques
    ,
    Monson, Kenneth
    DOI: 10.1115/1.4053796
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Computational simulations of traumatic brain injury (TBI) are commonly used to advance understanding of the injury–pathology relationship, tissue damage thresholds, and design of protective equipment such as helmets. Both human and animal TBI models have developed substantially over recent decades, partially due to the inclusion of more detailed brain geometry and representation of tissues like cerebral blood vessels. Explicit incorporation of vessels dramatically affects local strain and enables researchers to investigate TBI-induced damage to the vasculature. While some studies have indicated that cerebral arteries are rate-dependent, no published experimentally based, rate-sensitive constitutive models of cerebral arteries exist. In this work, we characterize the mechanical properties of axially failed porcine arteries, both quasi-statically (0.01 s−1) and at high rate (>
     
    100 s−1), and propose a rate-sensitive model to fit the data. We find that the quasi-static and high-rate stress–stretch curves become significantly different (p <
     
     0.05) above a stretch of 1.23. We additionally find a significant change in both failure stretch and stress as a result of strain rate. The stress–stretch curve is then modeled as a Holzapfel–Gasser–Ogden material, with a Prony series added to capture the effects of viscoelasticity. Ultimately, this paper demonstrates that rate dependence should be considered in the material properties of cerebral arteries undergoing high strain-rate deformations and provides a ready-to-use model for finite element implementation.
     
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      A Strain Rate-Dependent Constitutive Model for Göttingen Minipig Cerebral Arteries

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4284003
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    contributor authorPearson, Noah
    contributor authorBoiczyk, Gregory M.
    contributor authorKote, Vivek Bhaskar
    contributor authorSundaramurthy, Aravind
    contributor authorSubramaniam, Dhananjay Radhakrishnan
    contributor authorRubio, Jose E.
    contributor authorUnnikrishnan, Ginu
    contributor authorReifman, Jaques
    contributor authorMonson, Kenneth
    date accessioned2022-05-08T08:29:58Z
    date available2022-05-08T08:29:58Z
    date copyright3/9/2022 12:00:00 AM
    date issued2022
    identifier issn0148-0731
    identifier otherbio_144_08_081007.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4284003
    description abstractComputational simulations of traumatic brain injury (TBI) are commonly used to advance understanding of the injury–pathology relationship, tissue damage thresholds, and design of protective equipment such as helmets. Both human and animal TBI models have developed substantially over recent decades, partially due to the inclusion of more detailed brain geometry and representation of tissues like cerebral blood vessels. Explicit incorporation of vessels dramatically affects local strain and enables researchers to investigate TBI-induced damage to the vasculature. While some studies have indicated that cerebral arteries are rate-dependent, no published experimentally based, rate-sensitive constitutive models of cerebral arteries exist. In this work, we characterize the mechanical properties of axially failed porcine arteries, both quasi-statically (0.01 s−1) and at high rate (>
    description abstract100 s−1), and propose a rate-sensitive model to fit the data. We find that the quasi-static and high-rate stress–stretch curves become significantly different (p <
    description abstract 0.05) above a stretch of 1.23. We additionally find a significant change in both failure stretch and stress as a result of strain rate. The stress–stretch curve is then modeled as a Holzapfel–Gasser–Ogden material, with a Prony series added to capture the effects of viscoelasticity. Ultimately, this paper demonstrates that rate dependence should be considered in the material properties of cerebral arteries undergoing high strain-rate deformations and provides a ready-to-use model for finite element implementation.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleA Strain Rate-Dependent Constitutive Model for Göttingen Minipig Cerebral Arteries
    typeJournal Paper
    journal volume144
    journal issue8
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4053796
    journal fristpage81007-1
    journal lastpage81007-8
    page8
    treeJournal of Biomechanical Engineering:;2022:;volume( 144 ):;issue: 008
    contenttypeFulltext
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