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    Model for the Effect of Fiber Bridging on the Fracture Resistance of Reinforced-Carbon-Carbon

    Source: Journal of Engineering Materials and Technology:;2011:;volume( 133 ):;issue: 002::page 21017
    Author:
    K. S. Chan
    ,
    Y.-D. Lee
    ,
    S. J. Hudak
    DOI: 10.1115/1.4003344
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A micromechanical methodology has been developed for analyzing fiber bridging and resistance-curve behavior in reinforced-carbon-carbon (RCC) panels with a 3D composite architecture and a SiC surface coating. The methodology involves treating fiber bridging traction on the crack surfaces in terms of a weight function approach and a bridging law that relates the bridging stress to the crack opening displacement. A procedure has been developed to deduce material constants in the bridging law from the linear portion of the K-resistance curve. This approach has been applied to analyzing R-curves of RCC generated using double cantilever beam and single cantilever bend specimens to establish a bridging law for RCC. The bridging law has been implemented into a micromechanical code for computing the fracture response of a bridged crack in a structural analysis. The crack geometries considered in the structural analysis include the penetration of a craze crack in SiC into the RCC as a single-edge crack under bending and the deflection of a craze crack in SiC along the SiC/RCC interface as a T-shaped crack under bending. The proposed methodology has been validated by comparing the computed R-curves against experimental measurements. The analyses revealed substantial variations in the bridging stress (σo ranges from 11 kPa to 986 kPa, where σo is the limiting bridging stress) and the R-curve response for RCC due to the varying number of bridging ligaments in individual specimens. Furthermore, the R-curve response is predicted to depend on crack geometry. Thus, the initiation toughness at the onset of crack growth is recommended as a conservative estimate of the fracture resistance in RCC. If this bounding structural integrity analysis gives unacceptably conservative predictions, it would be possible to employ the current fiber bridging model to take credit for extra fracture resistance in the RCC. However, due to the large scatter of the inferred bridging stress in RCC, such an implementation would need to be probabilistically based.
    keyword(s): Fibers , Electrical resistance , Stress , Fracture (Materials) , Carbon , Fracture (Process) , Displacement , Weight (Mass) , Structural analysis , Coatings , Toughness , Geometry , Coating processes , Composite materials AND Electromagnetic scattering ,
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      Model for the Effect of Fiber Bridging on the Fracture Resistance of Reinforced-Carbon-Carbon

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    • Journal of Engineering Materials and Technology

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    contributor authorK. S. Chan
    contributor authorY.-D. Lee
    contributor authorS. J. Hudak
    date accessioned2017-05-09T00:44:01Z
    date available2017-05-09T00:44:01Z
    date copyrightApril, 2011
    date issued2011
    identifier issn0094-4289
    identifier otherJEMTA8-27139#021017_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/146185
    description abstractA micromechanical methodology has been developed for analyzing fiber bridging and resistance-curve behavior in reinforced-carbon-carbon (RCC) panels with a 3D composite architecture and a SiC surface coating. The methodology involves treating fiber bridging traction on the crack surfaces in terms of a weight function approach and a bridging law that relates the bridging stress to the crack opening displacement. A procedure has been developed to deduce material constants in the bridging law from the linear portion of the K-resistance curve. This approach has been applied to analyzing R-curves of RCC generated using double cantilever beam and single cantilever bend specimens to establish a bridging law for RCC. The bridging law has been implemented into a micromechanical code for computing the fracture response of a bridged crack in a structural analysis. The crack geometries considered in the structural analysis include the penetration of a craze crack in SiC into the RCC as a single-edge crack under bending and the deflection of a craze crack in SiC along the SiC/RCC interface as a T-shaped crack under bending. The proposed methodology has been validated by comparing the computed R-curves against experimental measurements. The analyses revealed substantial variations in the bridging stress (σo ranges from 11 kPa to 986 kPa, where σo is the limiting bridging stress) and the R-curve response for RCC due to the varying number of bridging ligaments in individual specimens. Furthermore, the R-curve response is predicted to depend on crack geometry. Thus, the initiation toughness at the onset of crack growth is recommended as a conservative estimate of the fracture resistance in RCC. If this bounding structural integrity analysis gives unacceptably conservative predictions, it would be possible to employ the current fiber bridging model to take credit for extra fracture resistance in the RCC. However, due to the large scatter of the inferred bridging stress in RCC, such an implementation would need to be probabilistically based.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModel for the Effect of Fiber Bridging on the Fracture Resistance of Reinforced-Carbon-Carbon
    typeJournal Paper
    journal volume133
    journal issue2
    journal titleJournal of Engineering Materials and Technology
    identifier doi10.1115/1.4003344
    journal fristpage21017
    identifier eissn1528-8889
    keywordsFibers
    keywordsElectrical resistance
    keywordsStress
    keywordsFracture (Materials)
    keywordsCarbon
    keywordsFracture (Process)
    keywordsDisplacement
    keywordsWeight (Mass)
    keywordsStructural analysis
    keywordsCoatings
    keywordsToughness
    keywordsGeometry
    keywordsCoating processes
    keywordsComposite materials AND Electromagnetic scattering
    treeJournal of Engineering Materials and Technology:;2011:;volume( 133 ):;issue: 002
    contenttypeFulltext
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