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    Predicting Residual Strength in Unsaturated Concrete Exposed to Sulfate Attack

    Source: Journal of Materials in Civil Engineering:;2006:;Volume ( 018 ):;issue: 003
    Author:
    Mohammed A. Shazali
    ,
    Mohammed H. Baluch
    ,
    Ali H. Al-Gadhib
    DOI: 10.1061/(ASCE)0899-1561(2006)18:3(343)
    Publisher: American Society of Civil Engineers
    Abstract: Deleterious damage that manifests in cracking and strength loss due to expansion and exfoliation often occurs when hardened concrete is exposed to sulfates. For a degradation-free service life, modeling sulfate attack is as important as considerations for strength and stability in concrete. This paper focuses on modeling the impact of gypsum as a constitutive durability product responsible for strength loss in concrete due to sulfate attack. The model blends the calculation of coupled moisture-sulfate transport processes with quantitative simulation of chemical reactions involving sulfates, moisture, and an incipient portlandite phase in concrete. Account is taken of variations in sulfate and moisture diffusivities to reflect microstructural changes when a portlandite matrix is stoichiometrically transformed to gypsum. Implementation of the model to both water-saturated and unsaturated concretes is numerically achieved according to standard Galerkin procedure in the finite-element sense. Contrary to expectations, simulation results for the case of initially unsaturated specimens before immersion in a sulfate solution are not significantly different from the initially saturated condition. Calculations of global relative residual strength predicated on degradation profiles generated by the model showed good agreement with postsulfate-immersion-test residual strength data.
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      Predicting Residual Strength in Unsaturated Concrete Exposed to Sulfate Attack

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    http://yetl.yabesh.ir/yetl1/handle/yetl/46135
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    contributor authorMohammed A. Shazali
    contributor authorMohammed H. Baluch
    contributor authorAli H. Al-Gadhib
    date accessioned2017-05-08T21:18:01Z
    date available2017-05-08T21:18:01Z
    date copyrightJune 2006
    date issued2006
    identifier other%28asce%290899-1561%282006%2918%3A3%28343%29.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/46135
    description abstractDeleterious damage that manifests in cracking and strength loss due to expansion and exfoliation often occurs when hardened concrete is exposed to sulfates. For a degradation-free service life, modeling sulfate attack is as important as considerations for strength and stability in concrete. This paper focuses on modeling the impact of gypsum as a constitutive durability product responsible for strength loss in concrete due to sulfate attack. The model blends the calculation of coupled moisture-sulfate transport processes with quantitative simulation of chemical reactions involving sulfates, moisture, and an incipient portlandite phase in concrete. Account is taken of variations in sulfate and moisture diffusivities to reflect microstructural changes when a portlandite matrix is stoichiometrically transformed to gypsum. Implementation of the model to both water-saturated and unsaturated concretes is numerically achieved according to standard Galerkin procedure in the finite-element sense. Contrary to expectations, simulation results for the case of initially unsaturated specimens before immersion in a sulfate solution are not significantly different from the initially saturated condition. Calculations of global relative residual strength predicated on degradation profiles generated by the model showed good agreement with postsulfate-immersion-test residual strength data.
    publisherAmerican Society of Civil Engineers
    titlePredicting Residual Strength in Unsaturated Concrete Exposed to Sulfate Attack
    typeJournal Paper
    journal volume18
    journal issue3
    journal titleJournal of Materials in Civil Engineering
    identifier doi10.1061/(ASCE)0899-1561(2006)18:3(343)
    treeJournal of Materials in Civil Engineering:;2006:;Volume ( 018 ):;issue: 003
    contenttypeFulltext
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