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    The Creep Damage Behavior of the Plasma-Sprayed Thermal Barrier Coating System NiCr22Co12Mo9-NiCoCrAlY-ZrO2/7%Y2O3

    Source: Journal of Engineering for Gas Turbines and Power:;1999:;volume( 121 ):;issue: 004::page 678
    Author:
    U. T. Schmidt
    ,
    O. Vöhringer
    ,
    D. Löhe
    DOI: 10.1115/1.2818525
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: During creep loading metallic substrates impose deformation on deposited ceramic thermal barrier coatings (TBC). Strain accomodation of the TBC is not attained by plastic deformation, but by means of crack initiation, crack opening, crack propagation or sliding of adjacent crack faces. In technical applications a distinction is made between tolerated or desired cracks perpendicular to the surface, and detrimental cracks parallel to the substrate-coating interface. Thus, TBC can respond to creep deformation by segmentation or spallation, the latter being referred to as failure. The parameters influencing the probability of either segmentation or spallation are temperature, creep rate, magnitude of creep deformation, layer thickness, and microstructure of the TBC. It can be stated that spallation failure probability increases with increasing creep rate, creep deformation, and layer thickness. The presence of pores between single spraying layers also strongly augments the likelyhood of spallation. No significant influence of temperature on spallation failure probability can be found in the range from 850°C to 1050°C. Light microscopy and scanning electron microscopy investigations show that the microstructure of the ceramic TBC changes during creep, and that the density of cracks detected on micrographs with low magnification (×50) increases with increasing creep deformation. On the other hand, the density of microcracks visible with high magnification (×500) is constant, or even decreases with increasing creep deformation. These findings are explained by sintering processes enabled by stress relaxation due to formation of macroscopic cracks perpendicular to the surface as a response to creep deformation. A relationship between microstructural changes and the emission of acoustic signals recorded during creep is presented.
    keyword(s): Creep , Plasmas (Ionized gases) , Thermal barrier coatings , Fracture (Materials) , Spallation (Nuclear physics) , Failure , Probability , Image segmentation , Thickness , Density , Deformation , Temperature , Ceramics , Acoustics , Sintering , Plasma spraying , Relaxation (Physics) , Stress , Coating processes , Coatings , Scanning electron microscopy , Microscopy , Crack propagation , Emissions , Microcracks AND Signals ,
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      The Creep Damage Behavior of the Plasma-Sprayed Thermal Barrier Coating System NiCr22Co12Mo9-NiCoCrAlY-ZrO2/7%Y2O3

    URI
    https://yetl.yabesh.ir/yetl1/handle/yetl/122094
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorU. T. Schmidt
    contributor authorO. Vöhringer
    contributor authorD. Löhe
    date accessioned2017-05-08T23:59:31Z
    date available2017-05-08T23:59:31Z
    date copyrightOctober, 1999
    date issued1999
    identifier issn1528-8919
    identifier otherJETPEZ-26792#678_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/122094
    description abstractDuring creep loading metallic substrates impose deformation on deposited ceramic thermal barrier coatings (TBC). Strain accomodation of the TBC is not attained by plastic deformation, but by means of crack initiation, crack opening, crack propagation or sliding of adjacent crack faces. In technical applications a distinction is made between tolerated or desired cracks perpendicular to the surface, and detrimental cracks parallel to the substrate-coating interface. Thus, TBC can respond to creep deformation by segmentation or spallation, the latter being referred to as failure. The parameters influencing the probability of either segmentation or spallation are temperature, creep rate, magnitude of creep deformation, layer thickness, and microstructure of the TBC. It can be stated that spallation failure probability increases with increasing creep rate, creep deformation, and layer thickness. The presence of pores between single spraying layers also strongly augments the likelyhood of spallation. No significant influence of temperature on spallation failure probability can be found in the range from 850°C to 1050°C. Light microscopy and scanning electron microscopy investigations show that the microstructure of the ceramic TBC changes during creep, and that the density of cracks detected on micrographs with low magnification (×50) increases with increasing creep deformation. On the other hand, the density of microcracks visible with high magnification (×500) is constant, or even decreases with increasing creep deformation. These findings are explained by sintering processes enabled by stress relaxation due to formation of macroscopic cracks perpendicular to the surface as a response to creep deformation. A relationship between microstructural changes and the emission of acoustic signals recorded during creep is presented.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThe Creep Damage Behavior of the Plasma-Sprayed Thermal Barrier Coating System NiCr22Co12Mo9-NiCoCrAlY-ZrO2/7%Y2O3
    typeJournal Paper
    journal volume121
    journal issue4
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.2818525
    journal fristpage678
    journal lastpage682
    identifier eissn0742-4795
    keywordsCreep
    keywordsPlasmas (Ionized gases)
    keywordsThermal barrier coatings
    keywordsFracture (Materials)
    keywordsSpallation (Nuclear physics)
    keywordsFailure
    keywordsProbability
    keywordsImage segmentation
    keywordsThickness
    keywordsDensity
    keywordsDeformation
    keywordsTemperature
    keywordsCeramics
    keywordsAcoustics
    keywordsSintering
    keywordsPlasma spraying
    keywordsRelaxation (Physics)
    keywordsStress
    keywordsCoating processes
    keywordsCoatings
    keywordsScanning electron microscopy
    keywordsMicroscopy
    keywordsCrack propagation
    keywordsEmissions
    keywordsMicrocracks AND Signals
    treeJournal of Engineering for Gas Turbines and Power:;1999:;volume( 121 ):;issue: 004
    contenttypeFulltext
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