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Carbonation induced changes in the mechanical performance, water and chloride permeability of Portland cement-slag-limestone ternary cement concretes

  • Moro Sabtiwu
  • , Yuvaraj Dhandapani
  • , Michal Drewniok
  • , Samuel Adu-Amankwah
  • , Susan Bernal Lopez
  • University of Leeds
  • Aston University

Research output: Contribution to journalArticlepeer-review

13   Link opens in a new tab Citations (SciVal)

Abstract

Carbonation and chloride-induced deterioration of reinforced concrete can cause infrastructure damage and potential collapse. This study evaluated the impact of carbonation on compressive strength, dimensional stability, water and chloride permeability of concretes made with ternary slag cement containing 10 or 20 wt.% limestone, compared to ground granulated blast furnace slag (GGBFS) blended cement or CEM I. The carbonation rates of binary and ternary concretes were higher than those of CEM I concrete. The existing equation correlating natural and accelerated carbonation coefficients holds for the concretes evaluated and the selected carbonation exposure condition studied. The carbonation depths estimated adopting this correlation are within the limits of the cover depths recommended by the BS 8500–1:2023 for concretes for a 50 years’ service life, when exposed to exposure classes XC3/XC4. Despite the higher carbonation rates, water and chloride permeability of the carbonated ternary and binary slag cement concretes were significantly lower than those of a CEM I equivalent. No clear correlation was identified between compressive strength, porosity, bulk conductivity, water sorption coefficient and carbonation rate. Each of these properties alone did not give a good indication of the overall durability performance of binary or ternary concretes. The results demonstrate that 10 % limestone addition has no adverse effect on carbonation resistance of composite cement concrete. Therefore, it is demonstrated that partial replacement of GGBFS by limestone is a practical and technically sound solution for producing concrete with a reduced clinker content and comparable durability to CEM I or binary GGBFS concretes.
Original languageEnglish
Article number106222
JournalCement & Concrete Composites
Volume163
Early online date9 Jul 2025
DOIs
Publication statusPublished - 31 Oct 2025

Bibliographical note

Publisher Copyright:
© 2025

Data Availability Statement

The data of this study is available in the University of Leeds Research Data Repository accessible in the following link - https://doi.org/10.5518/1708.

Funding

The authors declare the following financial interests/personal relationships which may be considered as potential competing interests: Moro Sabtiwu reports financial support for his PhD studies provided by National Highways Limited. The other co-authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.The PhD research of M. Sabtiwu was sponsored by the UK Engineering and Physical Sciences Research Council (EPSRC) via a CASE PhD studentship co-sponsored by National Highways. Participation of S.A. Bernal in this study was sponsored by the Engineering and Physical Sciences Research Council (EPSRC) via the Early Career Fellowship EP/R001642/1. The PhD research of M. Sabtiwu was sponsored by the UK Engineering and Physical Sciences Research Council (EPSRC) via a CASE PhD studentship co-sponsored by National Highways . Participation of S.A. Bernal in this study was sponsored by the Engineering and Physical Sciences Research Council ( EPSRC ) via the Early Career Fellowship EP/R001642/1.

FundersFunder number
National Highways
Engineering and Physical Sciences Research CouncilEP/R001642/1

Keywords

  • CEM VI
  • Carbonation
  • Chloride ingress
  • Ground granulated blast furnace slag
  • Limestone ternary cements
  • Sorptivity

ASJC Scopus subject areas

  • Building and Construction
  • General Materials Science

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