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    Design of Nonperiodic Microarchitectured Materials That Achieve Graded Thermal Expansions

    Source: Journal of Mechanisms and Robotics:;2016:;volume( 008 ):;issue: 005::page 51010
    Author:
    Hopkins, Jonathan B.
    ,
    Shaw, Lucas A.
    ,
    Weisgraber, Todd H.
    ,
    Farquar, George R.
    ,
    Harvey, Chris D.
    ,
    Spadaccini, Christopher M.
    DOI: 10.1115/1.4032248
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The aim of this paper is to introduce an approach for optimally organizing a variety of nonrepeating compliantmechanismlike unit cells within a large deformable lattice such that the bulk behavior of the lattice exhibits a desired graded change in thermal expansion while achieving a desired uniform stiffness over its geometry. Such lattices with nonrepeating unit cells, called nonperiodic microarchitectured materials, could be sandwiched between two materials with different thermal expansion coefficients to accommodate their different expansions and/or contractions induced by changing ambient temperatures. This capability would reduce systemlevel failures within robots, mechanisms, electronic modules, or other layered coatings or structures made of different materials with mismatched thermal expansion coefficients. The closedform analytical equations are provided, which are necessary to rapidly calculate the bulk thermal expansion coefficient and Young's modulus of general multimaterial lattices that consist first of repeating unit cells of the same design (i.e., periodic microarchitectured materials). Then, these equations are utilized in an iterative way to generate different rows of repeating unit cells of the same design that are layered together to achieve nonperiodic microarchitectured material lattices such that their top and bottom rows achieve the same desired thermal expansion coefficients as the two materials between which the lattice is sandwiched. A matlab tool is used to generate images of the undeformed and deformed lattices to verify their behavior and an example is provided as a case study. The theory provided is also verified and validated using finiteelement analysis (FEA) and experimentation.
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      Design of Nonperiodic Microarchitectured Materials That Achieve Graded Thermal Expansions

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    http://yetl.yabesh.ir/yetl1/handle/yetl/161926
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    • Journal of Mechanisms and Robotics

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    contributor authorHopkins, Jonathan B.
    contributor authorShaw, Lucas A.
    contributor authorWeisgraber, Todd H.
    contributor authorFarquar, George R.
    contributor authorHarvey, Chris D.
    contributor authorSpadaccini, Christopher M.
    date accessioned2017-05-09T01:31:28Z
    date available2017-05-09T01:31:28Z
    date issued2016
    identifier issn1942-4302
    identifier otherjmr_008_05_051010.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/161926
    description abstractThe aim of this paper is to introduce an approach for optimally organizing a variety of nonrepeating compliantmechanismlike unit cells within a large deformable lattice such that the bulk behavior of the lattice exhibits a desired graded change in thermal expansion while achieving a desired uniform stiffness over its geometry. Such lattices with nonrepeating unit cells, called nonperiodic microarchitectured materials, could be sandwiched between two materials with different thermal expansion coefficients to accommodate their different expansions and/or contractions induced by changing ambient temperatures. This capability would reduce systemlevel failures within robots, mechanisms, electronic modules, or other layered coatings or structures made of different materials with mismatched thermal expansion coefficients. The closedform analytical equations are provided, which are necessary to rapidly calculate the bulk thermal expansion coefficient and Young's modulus of general multimaterial lattices that consist first of repeating unit cells of the same design (i.e., periodic microarchitectured materials). Then, these equations are utilized in an iterative way to generate different rows of repeating unit cells of the same design that are layered together to achieve nonperiodic microarchitectured material lattices such that their top and bottom rows achieve the same desired thermal expansion coefficients as the two materials between which the lattice is sandwiched. A matlab tool is used to generate images of the undeformed and deformed lattices to verify their behavior and an example is provided as a case study. The theory provided is also verified and validated using finiteelement analysis (FEA) and experimentation.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDesign of Nonperiodic Microarchitectured Materials That Achieve Graded Thermal Expansions
    typeJournal Paper
    journal volume8
    journal issue5
    journal titleJournal of Mechanisms and Robotics
    identifier doi10.1115/1.4032248
    journal fristpage51010
    journal lastpage51010
    identifier eissn1942-4310
    treeJournal of Mechanisms and Robotics:;2016:;volume( 008 ):;issue: 005
    contenttypeFulltext
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