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    Shakedown Fatigue Limits for Materials With Minute Porosity

    Source: Journal of Applied Mechanics:;2009:;volume( 076 ):;issue: 003::page 31016
    Author:
    Jehuda Tirosh
    ,
    Sharon Peles
    DOI: 10.1115/1.3005961
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The intention of this study is to predict the fatigue-safe long life behavior of elastoplastic porous materials subjected to zero-tension fluctuating load. It is assumed that the materials contain a dilute amount of voids (less than 5%) and obey Gurson’s model of plastic yielding. The question to be answered is what would be the highest allowable stress amplitude that a porous material can endure (the “endurance limit”) when undergoing an infinite number of loading/unloading cycles. To reach the answer we employ the two shakedown theorems: (a) Melan’s static shakedown theorem (“elastic shakedown”) for establishing the lower bound to fatigue limit and (b) Koiter’s kinematic shakedown theorem (“plastic shakedown”) for establishing its upper bound. The two bounds are formulated rigorously but solved with some numerical assistance, mainly due to the nonlinear pressure dependency of the material behavior and the complex description of the plastic flow near stress-free voids. Both bounds (“dual bounds”) are adjusted to capture Gurson-like porous materials with noninteractive voids. General residual stresses (either real or virtual) are presented in the analysis. They are assumed to be time-independent as generated, say, by permanent temperature gradient between void surfaces and remote material boundaries. Such a situation is common, for instance, in ordinary porous sleeves (used in space industry and alike). A few experiments agree satisfactorily with the shakedown bounding concept.
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      Shakedown Fatigue Limits for Materials With Minute Porosity

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    contributor authorJehuda Tirosh
    contributor authorSharon Peles
    date accessioned2017-05-09T00:31:17Z
    date available2017-05-09T00:31:17Z
    date copyrightMay, 2009
    date issued2009
    identifier issn0021-8936
    identifier otherJAMCAV-26748#031016_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/139753
    description abstractThe intention of this study is to predict the fatigue-safe long life behavior of elastoplastic porous materials subjected to zero-tension fluctuating load. It is assumed that the materials contain a dilute amount of voids (less than 5%) and obey Gurson’s model of plastic yielding. The question to be answered is what would be the highest allowable stress amplitude that a porous material can endure (the “endurance limit”) when undergoing an infinite number of loading/unloading cycles. To reach the answer we employ the two shakedown theorems: (a) Melan’s static shakedown theorem (“elastic shakedown”) for establishing the lower bound to fatigue limit and (b) Koiter’s kinematic shakedown theorem (“plastic shakedown”) for establishing its upper bound. The two bounds are formulated rigorously but solved with some numerical assistance, mainly due to the nonlinear pressure dependency of the material behavior and the complex description of the plastic flow near stress-free voids. Both bounds (“dual bounds”) are adjusted to capture Gurson-like porous materials with noninteractive voids. General residual stresses (either real or virtual) are presented in the analysis. They are assumed to be time-independent as generated, say, by permanent temperature gradient between void surfaces and remote material boundaries. Such a situation is common, for instance, in ordinary porous sleeves (used in space industry and alike). A few experiments agree satisfactorily with the shakedown bounding concept.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleShakedown Fatigue Limits for Materials With Minute Porosity
    typeJournal Paper
    journal volume76
    journal issue3
    journal titleJournal of Applied Mechanics
    identifier doi10.1115/1.3005961
    journal fristpage31016
    identifier eissn1528-9036
    treeJournal of Applied Mechanics:;2009:;volume( 076 ):;issue: 003
    contenttypeFulltext
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