Orthogonal experimental design for compressive strength of recycled coarse aggregate concrete with silica fume-slag-fly ash hybrid micro-powders

被引:12
|
作者
Wang, Chengyuan [1 ,2 ]
Wang, Juan [2 ]
Liu, Xu [2 ]
Cai, YunFang [3 ]
Zhang, YuCheng [2 ]
机构
[1] East China Jiaotong Univ, Sch Transportat Engn, Nanchang 330013, Peoples R China
[2] Xinyu Univ, Coll Civil Engn & Architecture, Xinyu 338004, Peoples R China
[3] Xinyu Univ, Coll Marxism, Xinyu 338004, Peoples R China
关键词
Recycled coarse aggregate concrete with silica; fume-slag-fly ash hybrid micro-powders; (HMRAC); Orthogonal experimental design; Multiple linear regression model; Compressive strength; Carbon emission; CEMENT; REPLACEMENT;
D O I
10.1016/j.conbuildmat.2023.133669
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Recycled Coarse Aggregate Concrete (RAC) is a type of concrete that uses recycled coarse aggregate (RCA) instead of natural coarse aggregate (NCA), which helps to reduce the negative environmental impact of construction waste. In order to improve the low compressive strength of RAC and solve the problem of shortage of natural aggregates, this paper develops a high-performance concrete called recycled coarse aggregate concrete with silica fume-slag-fly ash hybrid micro-powders (HMRAC) by replacing part of the cement with a mixture of micronized silica fume (SF), slag (SG) and fly ash (FA) and using RCA of 50% mass instead of NCA. The optimum combination parameters and prediction model for the compressive strength of HMRAC were also proposed by orthogonal experimental design. A constant water-cement ratio of 0.45 and a 50% mass replacement of natural coarse aggregate (NCA) by recycled coarse aggregate (RCA) were adopted in the experiment, and the mass replacement ratios of silica fume (SF), slag (SG), and fly ash (FA) for ordinary Portland cement (OPC) were used as the test variables. In total, 16 combinations were tested, including a control group where 50% of the NCA mass was replaced by RCA. First, we investigated the degree and significance of the effect of the mass substitution ratio of SF, SG, and FA on the compressive strength of HMRAC using analysis of variance (ANOVA) and extreme difference analysis. Then, we determined the optimal combination ratio of SF, SG, and FA. Secondly, multiple regression analysis was used to propose a multiple regression model for predicting the compressive strength of HMRAC. Finally, we computed and analyzed the carbon emissions of HMRAC. The results indicated that the mass substitution rates of FA and SG had a greater effect on the compressive strength, and the mass substitution rate of SF had a lesser effect on the compressive strength. The interaction of SF, SG, and FA can significantly enhance the compressive strength of RAC. The optimal compressive strength performance of HMRAC was observed when the proportions were as follows: SF constituted 10%, SG made up 15%, and FA accounted for 5%. The regression model has reasonable accuracy and a small standard deviation of residuals. It can effectively predict the compressive strength value of HMRAC, aligning well with the experimental results. It exhibits a superior carbon reduction rate of 21.90%, compared to conventional concrete.
引用
收藏
页数:12
相关论文
共 44 条
  • [1] Compressive strength and microstructural analysis of recycled coarse aggregate concrete treated with silica fume
    Zhu, Lihua
    Ning, Qiujun
    Han, Wei
    Bai, Leilei
    CONSTRUCTION AND BUILDING MATERIALS, 2022, 334
  • [2] Performance of Recycled Coarse Aggregate in Micro-silica Fume Concrete: An Experimental Assessment
    Disu, Adedeji A.
    Kolay, Prabir
    Momoh, Sufiyanu O.
    WASTE MANAGEMENT, EGRWSE-23, VOL 4, 2025, 419 : 179 - 192
  • [3] Carbonation resistance of sustainable self-compacting concrete with recycled concrete aggregate and fly ash, slag, and silica fume
    Zong, Zhenyu
    Zhang, Qingyang
    Liu, Yi
    Guo, Zhanggen
    Lin, Shanli
    Jiang, Tianxun
    EUROPEAN JOURNAL OF ENVIRONMENTAL AND CIVIL ENGINEERING, 2024, 28 (09) : 2177 - 2199
  • [4] THE HARDENING PROCESS OF ULTRA-HIGH STRENGTH CONCRETE WITH CEMENT-SILICA FUME-SLAG-FLY ASH FOUR BINDERS
    Wang, Dehui
    Shi, Caijun
    Wu, Linmei
    Wu, Zemei
    Chong, Linlin
    1ST INTERNATIONAL CONFERENCE ON UHPC MATERIALS AND STRUCTURES, 2016, 105 : 492 - 499
  • [5] Indirect evaluation of the compressive strength of recycled aggregate concrete with high fly ash ratios
    Kurda, Rawaz
    de Brito, Jorge
    Silvestre, Jose D.
    MAGAZINE OF CONCRETE RESEARCH, 2018, 70 (04) : 204 - 216
  • [6] Mixed Concrete Optimization Using Fly Ash, Silica Fume and Iron Slag on the SCC's Compressive Strength
    Raharjo, D.
    Subakti, A.
    Tavio
    2ND INTERNATIONAL CONFERENCE ON REHABILITATION AND MAINTENANCE IN CIVIL ENGINEERING (ICRMCE), 2013, 54 : 827 - 839
  • [7] Predicting compressive strength of concrete with fly ash, metakaolin and silica fume by using machine learning techniques
    Ali, Al-Saraireh Majd
    LATIN AMERICAN JOURNAL OF SOLIDS AND STRUCTURES, 2022, 19 (05)
  • [8] Application of silica fume in high-volume fly ash self-compacting recycled aggregate concrete
    Kumar, Sudheer
    Kapoor, Kanish
    Singh, Ran Bir
    Singh, Paramveer
    AUSTRALIAN JOURNAL OF CIVIL ENGINEERING, 2023, 21 (02) : 207 - 223
  • [9] Experimental study of fly ash density effect to the mortar compressive strength with recycled fine aggregate
    Sagara, Altho
    Tjondro, Johannes Adhijoso
    Putri, Dinda Karina
    3RD INTERNATIONAL CONFERENCE ON SUSTAINABLE CIVIL ENGINEERING STRUCTURES AND CONSTRUCTION MATERIALS - SUSTAINABLE STRUCTURES FOR FUTURE GENERATIONS, 2017, 171 : 620 - 626
  • [10] Influence of fly ash and silica fume on the consistency retention and compressive strength of concrete subjected to prolonged agitating
    Erdogdu, Sakir
    Arslanturk, Caner
    Kurbetci, Sirin
    CONSTRUCTION AND BUILDING MATERIALS, 2011, 25 (03) : 1277 - 1281