• Title of article

    Gel nanostructure in alkali-activated binders based on slag and fly ash, and effects of accelerated carbonation

  • Author/Authors

    Susan A. Bernal، نويسنده , , John L. Provis، نويسنده , , Brant Walkley، نويسنده , , Rackel San Nicolas، نويسنده , , John D. Gehman، نويسنده , , David G. Brice، نويسنده , , Adam R. Kilcullen، نويسنده , , Peter Duxson، نويسنده , , Jannie S.J. van Deventer، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    18
  • From page
    127
  • To page
    144
  • Abstract
    Binders formed through alkali-activation of slags and fly ashes, including ‘fly ash geopolymers’, provide appealing properties as binders for low-emissions concrete production. However, the changes in pH and pore solution chemistry induced during accelerated carbonation testing provide unrealistically low predictions of in-service carbonation resistance. The aluminosilicate gel remaining in an alkali-activated slag system after accelerated carbonation is highly polymerised, consistent with a decalcification mechanism, while fly ash-based binders mainly carbonate through precipitation of alkali salts (bicarbonates at elevated CO2 concentrations, or carbonates under natural exposure) from the pore solution, with little change in the binder gel identifiable by nuclear magnetic resonance spectroscopy. In activated fly ash/slag blends, two distinct gels (C–A–S–H and N–A–S–H) are formed; under accelerated carbonation, the N–A–S–H gel behaves comparably to fly ash-based systems, while the C–A–S–H gel is decalcified similarly to alkali-activated slag. This provides new scope for durability optimisation, and for developing appropriate testing methodologies.
  • Keywords
    NMR spectroscopy , Alkali activated cements (D) , Granulated blast-furnace slag (D) , Fly ash (D) , Carbonation (C)
  • Journal title
    CEMENT AND CONCRETE RESEARCH
  • Serial Year
    2013
  • Journal title
    CEMENT AND CONCRETE RESEARCH
  • Record number

    1217346