Synthesis and microstructure analysis of autoclaved aerated concrete with carbide slag addition

被引:0
|
作者
Junjie Fan
Deguang Cao
Zhenzi Jing
Yi Zhang
Li Pu
Yani Jing
机构
[1] Tongji University,School of Materials Science and Engineering
[2] Guangxi University,School of Materials Science and Engineering
[3] Jiangnan University,School of Internet of Things Engineering
关键词
carbide slag; autoclaved aerated concrete; tobermorite; CSH gel; construction features;
D O I
暂无
中图分类号
学科分类号
摘要
Synthesis of autoclaved aerated concrete (AAC) has been carried out with carbide slag addition, and the carbide slag could be used as a main material to produce the AAC with the compressive strength about 2 MPa and the density below 0.6 g·cm−3. In this study, quartz sand acted as frame structure phase in the matrix, and quartz addition also influenced the Si/Ca of starting material. Tobermorite and CSH gel were formed readily at 62%, which seemed to enhance the compressive strength of samples. Curing time seemed to affect the morphology of phase produced, and specimen with the plate-like tobermorite formed at 10 h appeared to have a better compressive strength development than the fiber-like one at 18 h. The higher curing temperature seemed to favor the tobermorite and CSH gel formation, which also exerted a significant effect on the strength development of the samples. On the micro-scale, the formed CSH gel was filled in the interface of the matrix, and the tobermorite appeared to grow in internal-surface of the pores and interstices. The tobermorite or/and CSH formation seemed to densify the matrix, and therefore enhanced the strength of the samples.
引用
收藏
页码:1005 / 1010
页数:5
相关论文
共 50 条
  • [31] The influence of silicon dioxide nanoparticles on microstructure and properties of autoclaved aerated concrete
    Li, Min
    Qian, Xiaoyong
    Peng, Huan
    Wu, Zhishen
    CEMENT WAPNO BETON, 2017, 22 (04): : 320 - 327
  • [32] Microstructure and hydration mechanism of autoclaved aerated concrete from fly ash
    Wang, Zhaojia
    Li, Jun
    Ye, Pengfei
    Wang, Changlong
    Cui, Xiaowei
    JOURNAL OF NEW MATERIALS FOR ELECTROCHEMICAL SYSTEMS, 2019, 22 (02) : 85 - 90
  • [33] Coupled shrinkage and damage analysis of autoclaved aerated concrete
    Koudelka, Tomas
    Kruis, Jaroslav
    Madera, Jiri
    APPLIED MATHEMATICS AND COMPUTATION, 2015, 267 : 427 - 435
  • [34] Recycling of Basic Oxygen Furnace Slag as a Raw Material for Autoclaved Aerated Concrete Production
    Chen, Ying-Liang
    Lin, Chun-Ta
    SUSTAINABILITY, 2020, 12 (15)
  • [35] 100 years of autoclaved aerated concrete
    Cox, Jos
    CEMENT WAPNO BETON, 2024, 29 (02): : 84 - 92
  • [36] The today and tomorrow of autoclaved aerated concrete
    Malolepszy, Jan
    Laskawiec, Katarzyna
    CEMENT WAPNO BETON, 2017, 22 (05): : 358 - 370
  • [37] Utilization of carbide slag in autoclaved aerated concrete (CS-AAC) and optimization: Foaming, hydration process, and physic-mechanical properties
    Sun, Daosheng
    Yin, Feixiang
    Deng, Yang
    Liu, Kaiwei
    Tang, Jinhui
    Shen, Chengzhe
    Sun, Yawen
    Wang, Aiguo
    Huang, Niuniu
    Hu, Cheng
    CASE STUDIES IN CONSTRUCTION MATERIALS, 2023, 19
  • [38] Study on autoclaved aerated concrete: Review
    Kalpana, M.
    Mohith, S.
    MATERIALS TODAY-PROCEEDINGS, 2020, 22 : 894 - 896
  • [39] New opportunities for autoclaved aerated concrete
    Van Boggelen, Willem
    Völker, Kai
    Betonwerk und Fertigteil-Technik/Concrete Precasting Plant and Technology, 2004, 70 (03): : 60 - 64
  • [40] Acoustical properties of aerated autoclaved concrete
    Laukaitis, A
    Fiks, B
    APPLIED ACOUSTICS, 2006, 67 (03) : 284 - 296