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    Durability of Concrete with Nanoparticles under the Action of Both Cl<sup>&#x2212;</sup> Penetration and Freeze&#x2013;Thaw Cycles

    Source: Journal of Cold Regions Engineering:;2024:;Volume ( 038 ):;issue: 001::page 04023024-1
    Author:
    Maohua Zhang
    ,
    Fating Xie
    ,
    Yanyu Sun
    ,
    Yue Han
    DOI: 10.1061/JCRGEI.CRENG-642
    Publisher: ASCE
    Abstract: In the northern region of China, freeze–thaw cycles and chloride ion (Cl−) penetration are the primary factors affecting the durability of marine concrete. To investigate the influence of nanoparticles on the Cl− penetration resistance of marine concrete under the action of freeze–thaw cycles, nano-SiO2 and nano-Fe3O4 were added to plain concrete in different amounts. The Cl− penetration resistance of concrete under the action of freeze–thaw cycles was measured in a 5% NaCl solution. The relative dynamic modulus, mass loss rate, and Cl− content at different depths in concrete were measured to evaluate the salt-scaling resistance. The test results show that under salt freeze–thaw cycles, the relative dynamic modulus, bound Cl− content, and Cl− binding capacity of concrete with nanoparticles were higher than those of plain concrete. However, the mass loss, total Cl− content, and free Cl− content in concrete with nanoparticles were lower than those of plain concrete. With increasing nanoparticle content, the relative dynamic modulus, bound Cl− content, and Cl− binding capacity of the concrete first increased and subsequently decreased. However, the mass loss rate, total Cl− content, and free Cl− content first decreased and subsequently increased. The optimum amount of nano-SiO2 and nano-Fe3O4 in the concrete was 2%. The improvement effect of nano-SiO2 on the salt-scaling resistance of concrete was superior to that of concrete with the same amount of nano-Fe3O4. The addition of nanoparticles can accelerate the formation of hydrated products, enhance the chemical binding capacity and physical adsorption capacity of hydrated products to Cl−, and reduce the free Cl− content in concrete. This can improve the Cl− penetration resistance of marine concrete under the action of freeze–thaw cycles. This study provides a reference for the durable design of marine concrete in the northern region.
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      Durability of Concrete with Nanoparticles under the Action of Both Cl<sup>&#x2212;</sup> Penetration and Freeze&#x2013;Thaw Cycles

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4297481
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    contributor authorMaohua Zhang
    contributor authorFating Xie
    contributor authorYanyu Sun
    contributor authorYue Han
    date accessioned2024-04-27T22:46:55Z
    date available2024-04-27T22:46:55Z
    date issued2024/03/01
    identifier other10.1061-JCRGEI.CRENG-642.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4297481
    description abstractIn the northern region of China, freeze–thaw cycles and chloride ion (Cl−) penetration are the primary factors affecting the durability of marine concrete. To investigate the influence of nanoparticles on the Cl− penetration resistance of marine concrete under the action of freeze–thaw cycles, nano-SiO2 and nano-Fe3O4 were added to plain concrete in different amounts. The Cl− penetration resistance of concrete under the action of freeze–thaw cycles was measured in a 5% NaCl solution. The relative dynamic modulus, mass loss rate, and Cl− content at different depths in concrete were measured to evaluate the salt-scaling resistance. The test results show that under salt freeze–thaw cycles, the relative dynamic modulus, bound Cl− content, and Cl− binding capacity of concrete with nanoparticles were higher than those of plain concrete. However, the mass loss, total Cl− content, and free Cl− content in concrete with nanoparticles were lower than those of plain concrete. With increasing nanoparticle content, the relative dynamic modulus, bound Cl− content, and Cl− binding capacity of the concrete first increased and subsequently decreased. However, the mass loss rate, total Cl− content, and free Cl− content first decreased and subsequently increased. The optimum amount of nano-SiO2 and nano-Fe3O4 in the concrete was 2%. The improvement effect of nano-SiO2 on the salt-scaling resistance of concrete was superior to that of concrete with the same amount of nano-Fe3O4. The addition of nanoparticles can accelerate the formation of hydrated products, enhance the chemical binding capacity and physical adsorption capacity of hydrated products to Cl−, and reduce the free Cl− content in concrete. This can improve the Cl− penetration resistance of marine concrete under the action of freeze–thaw cycles. This study provides a reference for the durable design of marine concrete in the northern region.
    publisherASCE
    titleDurability of Concrete with Nanoparticles under the Action of Both Cl− Penetration and Freeze–Thaw Cycles
    typeJournal Article
    journal volume38
    journal issue1
    journal titleJournal of Cold Regions Engineering
    identifier doi10.1061/JCRGEI.CRENG-642
    journal fristpage04023024-1
    journal lastpage04023024-8
    page8
    treeJournal of Cold Regions Engineering:;2024:;Volume ( 038 ):;issue: 001
    contenttypeFulltext
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