Experimental investigation on the performance of ground granulated blast furnace slag and nano-silica blended concrete exposed to elevated temperature

被引:15
作者
Singh, Harpreet [1 ]
Tiwary, Aditya Kumar [1 ,2 ]
Singh, Sandeep [1 ,2 ]
机构
[1] Chandigarh Univ, Univ Inst Engn, Dept Civil Engn, Mohali 140413, Punjab, India
[2] Chandigarh Univ, Univ Ctr Res & Dev, Mohali 140413, Punjab, India
关键词
Nano; -silica; GGBFS; Residual strength properties; Elevated temperature; Mass loss; Ultra -sonic pulse velocity; SELF-COMPACTING CONCRETE; HIGH-STRENGTH CONCRETE; MECHANICAL-PROPERTIES; COMPRESSIVE STRENGTH; COOLING REGIMES; FLY-ASH; CEMENT; RESISTANCE; BEHAVIOR; POLYPROPYLENE;
D O I
10.1016/j.conbuildmat.2023.132088
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Minimising the risk of fire and structural collapse are primary goals in the design of concrete buildings. This study aimed to determine how nano-silica (NS) and ground granulated blast furnace slag (GGBFS) additives, used to replace some proportion of cement, affected the behavior of concrete when subjected to elevated temperatures ranging from 27 & DEG;C to 1000 & DEG;C. The mechanical and durability properties of concrete containing NS (0%-5%) and GGBFS (0%-25%) were investigated after being exposed to elevated temperatures. The concrete samples were heated according to ISO 834 standardized fire curve. After exposing the concrete to a higher temperature, it was cooled using the water cooling (WC) and air cooling (AC) process. It was found that when exposed to increased temperatures, concrete containing nano-silica and GGBFS performed better than concrete without any of these additives. The addition of 4% of nano-silica and 20% of GGBFS in concrete enhanced the instinctive and resilient characteristics of concrete up to the raised temperature of 400 & DEG; C after that drastic degradation of mechanical and durability properties was recorded for higher temperatures of the range 1000 & DEG;C. It showed that using nano -silica and GGBFS in concrete needs to be done delicately when the building could be exposed to a temperature of 400 & DEG;C and beyond. The microstructure analysis was performed and it showed that the utilization of nano-silica and GGBS in concrete can enhance the post-fire performance of concrete. Further, the relationship between residual properties of concrete exposed to raised temperature was assessed and empirical relations were pro-posed. It was observed that the predicted result of residual properties was in good agreement with the experi-mental results.
引用
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页数:22
相关论文
共 92 条
[81]   Effects of Elevated Temperature on the Residual Behavior of Concrete Containing Marble Dust and Foundry Sand [J].
Tiwary, Aditya Kumar ;
Singh, Sandeep ;
Kumar, Raman ;
Chohan, Jasgurpreet Singh ;
Sharma, Shubham ;
Singh, Jujhar ;
Li, Changhe ;
Ilyas, R. A. ;
Asyraf, M. R. M. ;
Malik, Mohammad Abdul .
MATERIALS, 2022, 15 (10)
[82]   Experimental investigation of the performance of ground granulated blast furnace slag blended recycled aggregate concrete exposed to elevated temperatures [J].
Tung, Tran Minh ;
Babalola, Olusola Emmanuel ;
Le, Duc-Hien .
CLEANER WASTE SYSTEMS, 2023, 4
[83]   Properties and behavior of self-compacting concrete produced with GBFS and FA additives subjected to high temperatures [J].
Uysal, Mucteba ;
Yilmaz, Kemalettin ;
Ipek, Metin .
CONSTRUCTION AND BUILDING MATERIALS, 2012, 28 (01) :321-326
[84]   Residual Compressive Strength of Recycled Aggregate Concretes after High Temperature Exposure [J].
Varona, Francisco B. ;
Baeza-Brotons, Francisco ;
Tenza-Abril, Antonio J. ;
Javier Baeza, F. ;
Banon, Luis .
MATERIALS, 2020, 13 (08)
[85]   Evaluation Residual Compressive Strength of Tunnel Lining Concrete Structure after Fire Damage Based on Ultrasonic Pulse Velocity and Shear-Wave Tomography [J].
Wang, Qiang ;
Chen, Daqing ;
Zhu, Kai ;
Zhai, Zitai ;
Xu, Juntao ;
Wu, Linlin ;
Hu, Dong ;
Xu, Weirong ;
Huang, Huandong .
PROCESSES, 2022, 10 (03)
[86]   Effect of nano-SiO2 and nano-CaCO3 on the static and dynamic properties of concrete [J].
Wang, Zhi-hang ;
Bai, Er-lei ;
Xu, Jin-yu ;
Du, Yu-hang ;
Zhu, Jing-sai .
SCIENTIFIC REPORTS, 2022, 12 (01)
[87]   Ultrasonic Assessment of the Concrete Residual Strength after a Real Fire Exposure [J].
Wroblewski, Roman ;
Stawiski, Bohdan .
BUILDINGS, 2020, 10 (09) :1-13
[88]   A review of mechanical properties of fibre reinforced concrete at elevated temperatures [J].
Wu, Heyang ;
Lin, Xiaoshan ;
Zhou, Annan .
CEMENT AND CONCRETE RESEARCH, 2020, 135
[89]   Residual compressive behaviour of pre-heated high-performance concrete with blast-furnace-slag [J].
Xiao, JZ ;
Meng, XA ;
Zhang, C .
FIRE SAFETY JOURNAL, 2006, 41 (02) :91-98
[90]   Sulfate Resistance of Recycled Aggregate Concrete with GGBS and Fly Ash-Based Geopolymer [J].
Xie, Jianhe ;
Zhao, Jianbai ;
Wang, Junjie ;
Wang, Chonghao ;
Huang, Peiyan ;
Fang, Chi .
MATERIALS, 2019, 12 (08)