Bond Properties of Glass Aggregate-Reinforced Concrete after Freeze-Thaw Cycles

被引:1
作者
Wang, Fengchi [1 ]
Guo, Hao [2 ]
Lin, Zenghua [2 ]
Zhao, Hanyu [2 ]
机构
[1] Shenyang Jianzhu Univ, Sch Transportat Engn, 25, Hunnan Middle Rd, Hunnan Dist, Shenyang 110168, Liaoning, Peoples R China
[2] Shenyang Jianzhu Univ, Sch Civil Engn, 25 Hunnan Middle Rd, Shenyang 110168, Liaoning, Peoples R China
关键词
Concrete; Glass sand; Freeze-thaw cycle; Bonding performance; WASTE GLASS; RECYCLED GLASS; STEEL BARS; STRENGTH; PERFORMANCE; REPLACEMENT; BEHAVIOR;
D O I
10.1061/JCRGEI.CRENG-657
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study investigates the bond behavior of glass aggregate-reinforced concrete (GARC) after freeze-thaw cycles, considering a number of freeze-thaw cycles (10, 20, and 30) and fine aggregate replacement rates (25%, 50%, and 75%) as variable parameters. Sixteen groups of specimens were designed to conduct central pullout tests after freeze-thaw cycles, and the bond-slip curves of each group were plotted. The bond performance of the GARC and its failure mechanism after freeze-thaw cycles were examined by analyzing the failure mode, ultimate bond strength, peak displacement, and bond stiffness. The results indicated that freeze-thaw cycles had a deteriorating effect on the bond performance of GARC. However, under the effect of the same number of freeze-thaw cycles, in comparison with the bonding performance of natural aggregate-reinforced concrete, GARC exhibited a higher resistance to the deterioration effect of freeze-thaw cycles, which was enhanced by increasing the replacement rate. In addition, the optimization effect of glass sand on the bonding properties became increasingly prominent as the freeze-thaw cycle deepened. Therefore, after freeze-thaw cycles, GARC exhibited excellent bonding behavior, and 75% GARC exhibited the best bonding performance. Based on the experimental data, considering the number of freeze-thaw cycles and aggregate replacement rate, the bond-slip constitutive equation of GARC after freeze-thaw conditions was established. Glass aggregate-reinforced concrete has excellent resistance to freeze-thaw cycle damage. After freeze-thaw cycles, glass aggregate concrete has better bonding performance with reinforcement than natural aggregate concrete, and the degree of improvement is related to the replacement rate of glass sand. The bond mechanism between the glass aggregate concrete and reinforcement was explained after freeze-thaw cycles. The research results proved the potential capacity and advantages of glass aggregate concrete under a complex environment and demonstrated the research potential of glass aggregate concrete. In addition, this study provided a new approach to improving the resistance of conventional concrete materials to complex environments. By replacing part of the river sand in concrete with glass sand, the resistance of concrete to freeze-thaw cyclic damage could be significantly improved without affecting the mechanical properties of reinforced concrete. This could also effectively address the problem of recycling waste glass and increasing shortage of river sand.
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页数:12
相关论文
共 31 条
[1]  
Alhumoud Jasem M., 2008, International Journal of Environment and Waste Management, V2, P111, DOI 10.1504/IJEWM.2008.016996
[2]   The effect of recycled concrete aggregate properties on the bond strength between RCA concrete and steel reinforcement [J].
Butler, L. ;
West, J. S. ;
Tighe, S. L. .
CEMENT AND CONCRETE RESEARCH, 2011, 41 (10) :1037-1049
[3]   INFLUENCE OF RIB GEOMETRY ON STRENGTH OF LAPPED JOINTS - AN EXPERIMENTAL AND ANALYTICAL STUDY [J].
CAIRNS, J ;
JONES, K .
MAGAZINE OF CONCRETE RESEARCH, 1995, 47 (172) :253-262
[4]   Mechanical properties and ASR evaluation of concrete tiles with waste glass aggregate [J].
Cota, Fabio Paiva ;
Damas Melo, Caio Cesar ;
Panzera, Tulio Hallak ;
Araujo, Aloizio Geraldo ;
Ribeiro Borges, Paulo Henrique ;
Scarpa, Fabrizio .
SUSTAINABLE CITIES AND SOCIETY, 2015, 16 :49-56
[5]  
Du HJ, 2014, ACI MATER J, V111, P47
[6]   Chemical reactions of glass cullet used as cement component [J].
Dyer, TD ;
Dhir, RK .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2001, 13 (06) :412-417
[7]   Bond behavior between steel reinforcing bars and concrete under dynamic loads [J].
Gao, Xiangling ;
Ren, Xiaodan ;
Li, Jie ;
Zhang, Yanbo .
STRUCTURAL CONCRETE, 2018, 19 (06) :1806-1817
[8]  
Goto Y., 1971, ACI Journal Proceedings, Technical Documents, V68, P244, DOI [10.14359/11325, DOI 10.14359/11325]
[9]   Experimental study of the material and bond properties of frost-damaged concrete [J].
Hanjari, Kamyab Zandi ;
Utgenannt, Peter ;
Lundgren, Karin .
CEMENT AND CONCRETE RESEARCH, 2011, 41 (03) :244-254
[10]  
Hawkins N., 1982, Bond in Concrete, P151