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Concrete made with high-strength artificial geopolymer aggregates: Mechanical properties and failure mechanisms

  • Lan-Ping Qian
  • , Bo-Tao Huang
  • , Ling-Yu Xu*
  • , Jian-Guo Dai*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Artificial geopolymer aggregates (GPA) provide an effective solution to simultaneously reduce the over-excavation of natural rock and mitigate the waste landfills. In this study, GPA with a paste compressive strength over 140 MPa were produced and used as coarse aggregates in concrete with different water-to-binder ratios (w/b = 0.3, 0.4, and 0.5). The mechanical properties and failure mechanisms of so-formed geopolymer aggregate concrete (GAC) were comprehensively investigated and compared with those of natural aggregate concrete (NAC). Although GPA showed inferior strength than natural aggregates, both the compressive and splitting tensile strengths of GAC were 8.0 % and 5.5 % higher than those of NAC, respectively, when w/b = 0.3. For the failure modes of GAC, cracks penetrated through both GPA and matrix when w/b = 0.3, while more aggregate/matrix interfacial cracks were observed as w/b increased. In comparison, major cracks propagated along the aggregate/matrix interface in NAC. From microhardness tests, the comparatively weak interfacial transition zone (ITZ) was observed in NAC, rather than in GAC. The micro-level observations demonstrated the existence of dense microstructures in GPA/matrix interfacial regions, especially when w/b is low. The findings provided a fundamental understanding of the mechanical properties and failure mechanisms of GAC, which is helpful for the future applications of GPA. © 2023 Elsevier Ltd.
Original languageEnglish
Article number130318
JournalConstruction and Building Materials
Volume367
Online published12 Jan 2023
DOIs
Publication statusPublished - 27 Feb 2023
Externally publishedYes

Funding

This study was supported by NSFC/RGC Joint Research Scheme (N_PolyU542/20) and Research Centre for Resources Engineering towards Carbon Neutrality (No. BBC7). Lan-Ping Qian acknowledges the PhD studentships offered by The Hong Kong Polytechnic University. Ling-Yu Xu would like to acknowledge the support by The Hong Kong Polytechnic University through the Research Institute for Sustainable Urban Development (No.1-BBWE). The authors also acknowledge CLP Power Hong Kong Limited, Hong Kong Green Island Cement Co. Ltd, and BASF Hong Kong for providing the FA, GGBS and superplasticizer in this study. This study was supported by NSFC/RGC Joint Research Scheme (N_PolyU542/20) and Research Centre for Resources Engineering towards Carbon Neutrality (No. BBC7). Lan-Ping Qian acknowledges the PhD studentships offered by The Hong Kong Polytechnic University. Ling-Yu Xu would like to acknowledge the support by The Hong Kong Polytechnic University through the Research Institute for Sustainable Urban Development (No.1-BBWE). The authors also acknowledge CLP Power Hong Kong Limited, Hong Kong Green Island Cement Co. Ltd, and BASF Hong Kong for providing the FA, GGBS and superplasticizer in this study.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production

Research Keywords

  • Alkali-activated material
  • Digital Image Correlation (DIC)
  • Failure mode
  • Geopolymer aggregate
  • High-strength artificial aggregate
  • Mechanical properties

RGC Funding Information

  • RGC-funded

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