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    Effect of High Temperature Exposure on Bond Properties of Steel Deformed Rebar Embedded in Self-Consolidating Concrete Containing Copper Slag as Fine Aggregate

    Source: Journal of Materials in Civil Engineering:;2023:;Volume ( 035 ):;issue: 012::page 04023439-1
    Author:
    Farnam Nabahati
    ,
    Seyed Sina Mousavi
    ,
    Mehdi Dehestani
    DOI: 10.1061/JMCEE7.MTENG-16062
    Publisher: ASCE
    Abstract: Despite the extensive studies in the literature on using copper slag (CS) as fine aggregate within normal concrete to alleviate the thermal cracking of samples exposed to high temperatures, very limited investigations concentrated on self-consolidating concrete (SCC). Moreover, there is no precise study to determine the effect of CS on thermal damage mitigation at the rebar/SCC interface. Hence, the present study intends to experimentally determine the residual bond properties of steel rebar embedded in SCC specimens exposed to high temperatures. Accordingly, three different percentages of 35%, 70%, and 100% of normal fine aggregate replacement by CS were considered. Also, different high-temperature exposures of 350°C, 550°C, and 750°C were selected for simulating thermal damage. Bond parameters were extracted from the bond-slip envelope curves to compare the results, including average bond stress, maximum bond stress (or bond strength), residual bond stress, and bond energy. Generally, findings revealed that using CS causes an increase in bond properties in undamaged specimens at ambient temperature and that a 53.6% bond strength improvement was observed for 100% CS replacement as compared to the reference SCC mixture. However, in thermally-damaged SCC specimens, the optimal dosage of 35% was found for fine aggregate replacement by CS.
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      Effect of High Temperature Exposure on Bond Properties of Steel Deformed Rebar Embedded in Self-Consolidating Concrete Containing Copper Slag as Fine Aggregate

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    contributor authorFarnam Nabahati
    contributor authorSeyed Sina Mousavi
    contributor authorMehdi Dehestani
    date accessioned2024-04-27T20:52:11Z
    date available2024-04-27T20:52:11Z
    date issued2023/12/01
    identifier other10.1061-JMCEE7.MTENG-16062.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4296137
    description abstractDespite the extensive studies in the literature on using copper slag (CS) as fine aggregate within normal concrete to alleviate the thermal cracking of samples exposed to high temperatures, very limited investigations concentrated on self-consolidating concrete (SCC). Moreover, there is no precise study to determine the effect of CS on thermal damage mitigation at the rebar/SCC interface. Hence, the present study intends to experimentally determine the residual bond properties of steel rebar embedded in SCC specimens exposed to high temperatures. Accordingly, three different percentages of 35%, 70%, and 100% of normal fine aggregate replacement by CS were considered. Also, different high-temperature exposures of 350°C, 550°C, and 750°C were selected for simulating thermal damage. Bond parameters were extracted from the bond-slip envelope curves to compare the results, including average bond stress, maximum bond stress (or bond strength), residual bond stress, and bond energy. Generally, findings revealed that using CS causes an increase in bond properties in undamaged specimens at ambient temperature and that a 53.6% bond strength improvement was observed for 100% CS replacement as compared to the reference SCC mixture. However, in thermally-damaged SCC specimens, the optimal dosage of 35% was found for fine aggregate replacement by CS.
    publisherASCE
    titleEffect of High Temperature Exposure on Bond Properties of Steel Deformed Rebar Embedded in Self-Consolidating Concrete Containing Copper Slag as Fine Aggregate
    typeJournal Article
    journal volume35
    journal issue12
    journal titleJournal of Materials in Civil Engineering
    identifier doi10.1061/JMCEE7.MTENG-16062
    journal fristpage04023439-1
    journal lastpage04023439-16
    page16
    treeJournal of Materials in Civil Engineering:;2023:;Volume ( 035 ):;issue: 012
    contenttypeFulltext
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