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    Toward Fatigue-Tolerant Design of Additively Manufactured Strut-Based Lattice Metamaterials

    Source: Journal of Computing and Information Science in Engineering:;2024:;volume( 024 ):;issue: 005::page 51011-1
    Author:
    Apetre, Nicoleta A.
    ,
    Michopoulos, John G.
    ,
    Rodriguez, Steven N.
    ,
    Iliopoulos, Athanasios
    ,
    Steuben, John C.
    ,
    Graber, Benjamin D.
    ,
    Arcari, Attilio
    DOI: 10.1115/1.4065201
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The advent of additive manufacturing (AM) has enabled the prototyping of periodic and non-periodic metamaterials (a.k.a. lattice or cellular structures) that could be deployed in a variety of engineering applications where certain combinations of performance features are desirable. For example, these structures could be used in a variety of naval engineering applications where lightweight, large surface area, energy absorption, heat dissipation, and acoustic bandgap control are desirable. Furthermore, combining the multifunctional design optimization of these structures with progressive degradation due to cyclic loading could lead to fatigue-activated attritable systems with potentially tailorable performances not yet in reach by current conventional systems. Nevertheless, in order to deploy these complex geometry structures their multiphysics response has to be well understood and characterized. The objective of the current effort is to describe an initial approach for designing a uniaxial metamaterial specimen for fatigue testing as the first step toward the design of multi-axial fatigue test coupons. In order to compare bending- and stretching-dominated structures, two strut-based lattices made of Ti-6Al-4V alloy consisting of the octet and tetrakaidecahedron (or Kelvin) cells are examined. The specimens are designed to fail in the central area of the specimen where edge effects are minimized. Finite element results of the relevant structural mechanics are implemented and exercised to compare the performance of the eight relevant geometries and to evaluate the effect of relative density on fatigue life.
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      Toward Fatigue-Tolerant Design of Additively Manufactured Strut-Based Lattice Metamaterials

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    contributor authorApetre, Nicoleta A.
    contributor authorMichopoulos, John G.
    contributor authorRodriguez, Steven N.
    contributor authorIliopoulos, Athanasios
    contributor authorSteuben, John C.
    contributor authorGraber, Benjamin D.
    contributor authorArcari, Attilio
    date accessioned2024-12-24T19:02:57Z
    date available2024-12-24T19:02:57Z
    date copyright4/18/2024 12:00:00 AM
    date issued2024
    identifier issn1530-9827
    identifier otherjcise_24_5_051011.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4303199
    description abstractThe advent of additive manufacturing (AM) has enabled the prototyping of periodic and non-periodic metamaterials (a.k.a. lattice or cellular structures) that could be deployed in a variety of engineering applications where certain combinations of performance features are desirable. For example, these structures could be used in a variety of naval engineering applications where lightweight, large surface area, energy absorption, heat dissipation, and acoustic bandgap control are desirable. Furthermore, combining the multifunctional design optimization of these structures with progressive degradation due to cyclic loading could lead to fatigue-activated attritable systems with potentially tailorable performances not yet in reach by current conventional systems. Nevertheless, in order to deploy these complex geometry structures their multiphysics response has to be well understood and characterized. The objective of the current effort is to describe an initial approach for designing a uniaxial metamaterial specimen for fatigue testing as the first step toward the design of multi-axial fatigue test coupons. In order to compare bending- and stretching-dominated structures, two strut-based lattices made of Ti-6Al-4V alloy consisting of the octet and tetrakaidecahedron (or Kelvin) cells are examined. The specimens are designed to fail in the central area of the specimen where edge effects are minimized. Finite element results of the relevant structural mechanics are implemented and exercised to compare the performance of the eight relevant geometries and to evaluate the effect of relative density on fatigue life.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleToward Fatigue-Tolerant Design of Additively Manufactured Strut-Based Lattice Metamaterials
    typeJournal Paper
    journal volume24
    journal issue5
    journal titleJournal of Computing and Information Science in Engineering
    identifier doi10.1115/1.4065201
    journal fristpage51011-1
    journal lastpage51011-11
    page11
    treeJournal of Computing and Information Science in Engineering:;2024:;volume( 024 ):;issue: 005
    contenttypeFulltext
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