Design and performance optimization of alkali-activated waste coal bottom ash/slag porous concrete

被引:9
|
作者
Tan, Yi [1 ,2 ]
He, Yan [1 ,2 ]
Cui, Xuemin [1 ,2 ]
Liu, Leping [3 ]
机构
[1] Guangxi Univ, Sch Chem & Chem Engn, Nanning 530004, Peoples R China
[2] Guangxi Univ, Guangxi Key Lab Petrochem Resource Proc & Proc Int, Nanning 530004, Peoples R China
[3] Nanning Normal Univ, Coll Chem & Sci, Guangxi Key Lab Nat Polymer Chem & Phys, Nanning 530001, Peoples R China
基金
中国国家自然科学基金;
关键词
Porous concrete; Rheological properties; Alkali -activated materials; Coal bottom ash (CBA); Compressive strength; Paste film thickness (PFT); PERVIOUS CONCRETE; FLY-ASH; MECHANICAL-PROPERTIES; SLAG; STRENGTH; BINDER; GEOPOLYMERS; METAKAOLIN; SHRINKAGE; AGGREGATE;
D O I
10.1016/j.conbuildmat.2022.129413
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
When alkali-activated slag material is used in porous concrete, it has the problems of short setting time and poor operability. In this paper, the effect of coal bottom ash content on the rheological properties, the mechanical properties, porosity, permeability coefficient, and PFT of AACS-PC of the paste was investigated. The results showed that the fluidity and porosity of the paste with a water-solid ratio of 0.35 were positively correlated with the coal bottom ash content, but negatively correlated with the PFT. When the content of coal bottom ash was 20 wt% and the waterglass modulus was 1.4, the compressive strength of AACS-PC can reach 22.1Mpa and the water permeability coefficient of AACS-PC was 2.9 mm/s. Both the compressive strength and water permeability coefficient could meet the requirements of the standard of ASTM and JIS A. The addition of CBA can effectively improve the operability of alkali -activated materials in the preparation of porous concrete.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Study on properties of pervious concrete with alkali-activated slag-fly ash
    Bian, Wei
    Ma, Kunlin
    Long, Guangcheng
    Liu, Wanwan
    Zhang, Chuanqin
    Journal of Railway Science and Engineering, 2020, 17 (02) : 349 - 357
  • [22] Prediction of the autogenous shrinkage and microcracking of alkali-activated slag and fly ash concrete
    Li, Zhenming
    Lu, Tianshi
    Chen, Yun
    Wu, Bei
    Ye, Guang
    CEMENT & CONCRETE COMPOSITES, 2021, 117
  • [23] A Low-Autogenous-Shrinkage Alkali-Activated Slag and Fly Ash Concrete
    Li, Zhenming
    Yao, Xingliang
    Chen, Yun
    Lu, Tianshi
    Ye, Guang
    APPLIED SCIENCES-BASEL, 2020, 10 (17):
  • [24] Influence of Polypropylene and Glass Fibers on Alkali-Activated Slag/Fly Ash Concrete
    Ali, Shehroze
    Sheikh, M. Neaz
    Sargeant, Mitchell
    Hadi, Muhammad N. S.
    ACI STRUCTURAL JOURNAL, 2020, 117 (04) : 183 - 192
  • [25] DURABILITY PERFORMANCE OF ALKALI-ACTIVATED METAKAOLIN, SLAG, FLY ASH, AND HYBRIDS
    Jirasit, F.
    Ruescher, C. H.
    Lohaus, L.
    Chindaprasirt, P.
    DEVELOPMENTS IN STRATEGIC CERAMIC MATERIALS II, 2017, : 3 - 12
  • [26] A mix design methodology of blast furnace slag and fly ash-based alkali-activated concrete
    Sun, Beibei
    Sun, Yubo
    Ye, Guang
    De Schutter, Geert
    CEMENT & CONCRETE COMPOSITES, 2023, 140
  • [27] Effects of rice husk ash on strength and durability performance of slag-based alkali-activated concrete
    Pradhan, Shashwati Soumya
    Mishra, Umesh
    Biswal, Sushant Kumar
    Pramanik, Subhadip
    Jangra, Parveen
    Aslani, Farhad
    STRUCTURAL CONCRETE, 2024, 25 (04) : 2839 - 2854
  • [28] Resistance to Chlorides of the Alkali-Activated Slag Concrete
    Roa-Rodriguez, G.
    Aperador, W.
    Delgado, A.
    INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2014, 9 (01): : 282 - 291
  • [29] Alternative concrete based on alkali-activated slag
    Rodriguez, E.
    Bernal, S.
    Mejia de Gutierrez, R.
    Puertas, F.
    MATERIALES DE CONSTRUCCION, 2008, 58 (291) : 53 - 67
  • [30] Mechanical Properties of Alkali-activated Slag Concrete
    Wan X.
    Zhang Y.
    Zhao T.
    Zhang S.
    Cheng Y.
    2018, Cailiao Daobaoshe/ Materials Review (32): : 2091 - 2095