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    Closed-Form General Relationship Model for the Interfacial Oxidation of Cylindrically Curved Surfaces

    Source: Journal of Engineering Materials and Technology:;2022:;volume( 144 ):;issue: 003::page 31009-1
    Author:
    Blanchet
    ,
    Thierry A.
    DOI: 10.1115/1.4054432
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A closed-form algebraic expression of the general relationship between film thickness and time during thermal oxidation as attained by Deal and Grove for planar surfaces has remained elusive for surfaces with curvature. Even under a baseline case of constant parameter values to describe oxidant gas-phase transport, diffusion, and reaction, by the conventionally adopted model treating the oxide as fluid capable of flow in accounting for the molecular volume difference between it and the metal from which it was formed and relate the radii describing the oxide relative to those of the metal, numerical integration is required to approximate the time corresponding to any given oxide thickness. Several example sets of such numerical approximation of the relationship between thickness and time by the conventional fluid oxide model on curved cylindrical surfaces are provided here to highlight its lacking closed-form general relationship. In contrast, if instead modeling the oxide as solid and freely expanded from the metal forming it to relate their geometries, it is shown here that a closed-form algebraic expression of the general relationship between oxide thickness and time on cylindrically and in turn spherically curved surfaces is attained in the baseline case of constant parameter values, akin to that preceding by Deal and Grove for planar surfaces. Continuing model refinements will consider dependencies of parameter values on stress state evolving as oxide thickness grows on curved surfaces.
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      Closed-Form General Relationship Model for the Interfacial Oxidation of Cylindrically Curved Surfaces

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4287305
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    contributor authorBlanchet
    contributor authorThierry A.
    date accessioned2022-08-18T13:02:02Z
    date available2022-08-18T13:02:02Z
    date copyright5/17/2022 12:00:00 AM
    date issued2022
    identifier issn0094-4289
    identifier othermats_144_3_031009.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4287305
    description abstractA closed-form algebraic expression of the general relationship between film thickness and time during thermal oxidation as attained by Deal and Grove for planar surfaces has remained elusive for surfaces with curvature. Even under a baseline case of constant parameter values to describe oxidant gas-phase transport, diffusion, and reaction, by the conventionally adopted model treating the oxide as fluid capable of flow in accounting for the molecular volume difference between it and the metal from which it was formed and relate the radii describing the oxide relative to those of the metal, numerical integration is required to approximate the time corresponding to any given oxide thickness. Several example sets of such numerical approximation of the relationship between thickness and time by the conventional fluid oxide model on curved cylindrical surfaces are provided here to highlight its lacking closed-form general relationship. In contrast, if instead modeling the oxide as solid and freely expanded from the metal forming it to relate their geometries, it is shown here that a closed-form algebraic expression of the general relationship between oxide thickness and time on cylindrically and in turn spherically curved surfaces is attained in the baseline case of constant parameter values, akin to that preceding by Deal and Grove for planar surfaces. Continuing model refinements will consider dependencies of parameter values on stress state evolving as oxide thickness grows on curved surfaces.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleClosed-Form General Relationship Model for the Interfacial Oxidation of Cylindrically Curved Surfaces
    typeJournal Paper
    journal volume144
    journal issue3
    journal titleJournal of Engineering Materials and Technology
    identifier doi10.1115/1.4054432
    journal fristpage31009-1
    journal lastpage31009-9
    page9
    treeJournal of Engineering Materials and Technology:;2022:;volume( 144 ):;issue: 003
    contenttypeFulltext
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