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    Effect of Loading Path and Porosity on the Failure Mode of Porous Rocks

    Source: Applied Mechanics Reviews:;1992:;volume( 045 ):;issue: 008::page 281
    Author:
    Teng-fong Wong
    ,
    Hiram Szeto
    ,
    Jiaxiang Zhang
    DOI: 10.1115/1.3119759
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Grain crushing and pore collapse are the dominant compaction mechanisms in high porosity clastic rocks. These micromechanical processes control the evolution of strain hardening during cataclastic flow, and they can also result in embrittlement of the rock. The mechanics of the transition from brittle fracture to homogeneous cataclastic flow for the Berea and Kayenta sandstones were investigated in the laboratory. The mechanical data show that the transition is sensitively dependent on the stress state as well as the porosity. In the stress space, the complete locus for brittle failure by shear localization can be determined by tests on normally consolidated and overconsolidated samples along different loading paths. Using porosity as the hardening parameter, the evolution of the inelastic yield locus with strain hardening can be mapped out in the stress space. This yield locus expands with decreasing porosity. Scanning electron microscope and acoustic emission measurements were used to elucidate the micromechanics. The onset of grain crushing and pore collapse was marked by a surge in acoustic emission activity. A Hertzian fracture mechanics model was formulated to analyze the roles of porosity, grain size and fracture toughness in controlling the onset of hydrostatic and shear-enhanced compaction. Stereological measurements of the microcrack density show that significant stress-induced anisotropy was induced by shear-enhanced compaction, with preferred orientations of the stress-induced microcracks subparallel to the maximum compression direction.
    keyword(s): Failure , Porosity , Rocks , Stress , Compacting , Shear (Mechanics) , Acoustic emissions , Collapse , Microcracks , Flow (Dynamics) , Measurement , Work hardening , Mechanisms , Surges , Scanning electron microscopes , Brittleness , Hydrostatics , Fracture mechanics , Hardening , Anisotropy , Micromechanics (Engineering) , Density , Fracture toughness , Grain size , Compression , Embrittlement AND Brittle fracture ,
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      Effect of Loading Path and Porosity on the Failure Mode of Porous Rocks

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    https://yetl.yabesh.ir/yetl1/handle/yetl/109555
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    contributor authorTeng-fong Wong
    contributor authorHiram Szeto
    contributor authorJiaxiang Zhang
    date accessioned2017-05-08T23:37:15Z
    date available2017-05-08T23:37:15Z
    date copyrightAugust, 1992
    date issued1992
    identifier issn0003-6900
    identifier otherAMREAD-25630#281_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/109555
    description abstractGrain crushing and pore collapse are the dominant compaction mechanisms in high porosity clastic rocks. These micromechanical processes control the evolution of strain hardening during cataclastic flow, and they can also result in embrittlement of the rock. The mechanics of the transition from brittle fracture to homogeneous cataclastic flow for the Berea and Kayenta sandstones were investigated in the laboratory. The mechanical data show that the transition is sensitively dependent on the stress state as well as the porosity. In the stress space, the complete locus for brittle failure by shear localization can be determined by tests on normally consolidated and overconsolidated samples along different loading paths. Using porosity as the hardening parameter, the evolution of the inelastic yield locus with strain hardening can be mapped out in the stress space. This yield locus expands with decreasing porosity. Scanning electron microscope and acoustic emission measurements were used to elucidate the micromechanics. The onset of grain crushing and pore collapse was marked by a surge in acoustic emission activity. A Hertzian fracture mechanics model was formulated to analyze the roles of porosity, grain size and fracture toughness in controlling the onset of hydrostatic and shear-enhanced compaction. Stereological measurements of the microcrack density show that significant stress-induced anisotropy was induced by shear-enhanced compaction, with preferred orientations of the stress-induced microcracks subparallel to the maximum compression direction.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleEffect of Loading Path and Porosity on the Failure Mode of Porous Rocks
    typeJournal Paper
    journal volume45
    journal issue8
    journal titleApplied Mechanics Reviews
    identifier doi10.1115/1.3119759
    journal fristpage281
    journal lastpage293
    identifier eissn0003-6900
    keywordsFailure
    keywordsPorosity
    keywordsRocks
    keywordsStress
    keywordsCompacting
    keywordsShear (Mechanics)
    keywordsAcoustic emissions
    keywordsCollapse
    keywordsMicrocracks
    keywordsFlow (Dynamics)
    keywordsMeasurement
    keywordsWork hardening
    keywordsMechanisms
    keywordsSurges
    keywordsScanning electron microscopes
    keywordsBrittleness
    keywordsHydrostatics
    keywordsFracture mechanics
    keywordsHardening
    keywordsAnisotropy
    keywordsMicromechanics (Engineering)
    keywordsDensity
    keywordsFracture toughness
    keywordsGrain size
    keywordsCompression
    keywordsEmbrittlement AND Brittle fracture
    treeApplied Mechanics Reviews:;1992:;volume( 045 ):;issue: 008
    contenttypeFulltext
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