Strength development of solely ground granulated blast furnace slag geopolymers

被引:86
|
作者
Aziz, Ikmal Hakem [1 ]
Abdullah, Mohd Mustafa Al Bakri [1 ]
Salleh, M. A. A. Mohd [1 ]
Azimi, Emy Aizat [1 ]
Chaiprapa, Jitrin [2 ]
Sandu, Andrei Victor [3 ]
机构
[1] Univ Malaysia Perlis, Ctr Excellence Geopolymer & Green Technol, Sch Mat Engn, Perlis, Malaysia
[2] Synchrotron Light Res Inst, Muang 30000, Nakhon Ratchasi, Thailand
[3] Gheorghe Asachi Tech Univ Iasi, Fac Mat Sci & Engn, Iasi, Romania
基金
欧盟地平线“2020”;
关键词
Ground granulated blast furnace slag; Geopolymer; Compressive strength; Synchrotron micro-X-ray fluorescence; X-RAY-FLUORESCENCE; ACTIVATED FLY-ASH; MECHANICAL-PROPERTIES; COMPRESSIVE STRENGTH; SILICATE MODULUS; DRYING SHRINKAGE; PORTLAND-CEMENT; METAKAOLIN; MICROSTRUCTURE; TEMPERATURE;
D O I
10.1016/j.conbuildmat.2020.118720
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper investigates the strength development of solely ground granulated blast furnace slag geopolymers (GGBFS). An optimal combination of GGBFS with various solid/liquid and alkaline activator ratios had been determined by performing a number of compressive strength tests. It was found that GGBFS with 3.0 solid/liquid ratio and 2.5 alkaline activator ratio resulted in high compressive strength at 168.7 MPa after 28 days of curing. The microstructure analysis of the GGBFS geopolymers using SEM, FTIR and XRD revealed the formation of tobermorite and calcite (CaCO3) phases within a three-dimensional system. In addition, an advanced characterisation non-destructive technique using the synchrotron micro-XRF was performed to reveal detail phase distribution in the system. It displayed that the calcium concentration was higher at silica and alumina regions, which described the formation of tobermorite and CaCO3 as the contributing factor towards high compressive strength. (C) 2020 Elsevier Ltd. All rights reserved.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Transmission characteristics of a composite made with ground granulated blast furnace slag
    Jeong, Yi-Ru
    Hong, Ic-Pyo
    Chun, Heoung-Jae
    Yook, Jong-Gwan
    IEICE ELECTRONICS EXPRESS, 2014, 11 (02):
  • [32] Microstructure and Durability of Ground Granulated Blast Furnace Slag Cement Mortars
    Mohammed A. Saafan
    Zeinab A. Etman
    Doaa M. El lakany
    Iranian Journal of Science and Technology, Transactions of Civil Engineering, 2021, 45 : 1457 - 1465
  • [33] Field tests on ground improvement using granulated blast furnace slag
    Shinozaki, H
    Matsuda, H
    BGA INTERNATIONAL CONFERENCE ON FOUNDATIONS: INNOVATIONS, OBSERVATIONS, DESIGN AND PRACTICE, 2003, : 817 - 824
  • [34] Activation of Ground Granulated Blast Furnace Slag Cement by Calcined Alunite
    Kim, Hyung-Seok
    Park, Joo-Won
    An, Yong-Jun
    Bae, Jong-Soo
    Han, Choon
    MATERIALS TRANSACTIONS, 2011, 52 (02) : 210 - 218
  • [35] Granulated blast furnace slag grinding
    Rose, D.
    Krupp, Polysius, A.G.
    World Cement, 2000, 31 (09): : 49 - 66
  • [36] Hydration of alkali-activated ground granulated blast furnace slag
    Song, S
    Sohn, D
    Jennings, HM
    Mason, TO
    JOURNAL OF MATERIALS SCIENCE, 2000, 35 (01) : 249 - 257
  • [37] Properties of High Content Ground Granulated Blast Furnace Slag Concrete
    Topcu, Ilker Bekir
    Unverdi, Aytac
    PROCEEDINGS OF 3RD INTERNATIONAL SUSTAINABLE BUILDINGS SYMPOSIUM (ISBS 2017), VOL 1, 2018, 6 : 114 - 126
  • [38] Carbonated ground granulated blast furnace slag stabilising brown kaolin
    Ahmed Mohammed Awad Mohammed
    Nor Zurairahetty Mohd Yunus
    Muhammad Azril Hezmi
    Ahmad Safuan A. Rashid
    Suksun Horpibulsuk
    Environmental Science and Pollution Research, 2021, 28 : 57308 - 57320
  • [39] Activation of ground granulated blast furnace slag by using calcined dolomite
    Gu, Kai
    Jin, Fei
    Al-Tabbaa, Abir
    Shi, Bin
    CONSTRUCTION AND BUILDING MATERIALS, 2014, 68 : 252 - 258
  • [40] REACTIVITY OF GRANULATED BLAST FURNACE SLAG
    Behim, M.
    Beddar, M.
    Clastres, P.
    SLOVAK JOURNAL OF CIVIL ENGINEERING, 2013, 21 (02) : 7 - 14