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Influence of Effective Micro-Organisms on the Rheology and Fresh State Properties of SCMs-Based Concrete for Digital Fabrication (2023-03)

10.1016/j.matpr.2023.03.520

 Ibrahim Kamoru,  Jaji Mustapha,  van Zijl Gideon,  Babafemi Adewumi
Journal Article - Materials Today: Proceedings

Abstract

A reduction in the cost and anthropogenic CO2 emissions of Portland cement production can be achieved by adding supplementary cementitious materials (SCMs) obtained from industrial origins, like fly ash, silica fume, slagments, and naturally available such as limestone and kaolinitic clay. Replacement of large quantities of cement with SCMs profoundly influences the fresh and mechanical characteristics of structural concrete. This study presents an experimental investigation to evaluate the influence of effective microorganisms (EM) on freshly mixed fly ash- and limestone calcined clay (LC2) cement-based fibrereinforced printable concrete (FRPC). EM is a mixture of three different microorganisms: photosynthetic bacteria, lactic acid bacteria, and yeast. Its inclusion complements green concrete and is environmentally friendly for a sustainable environment. Four mixes (i.e., fly ash cement-based mix, LC2 cement-based mix, and both mixes induced by EM) were prepared and examined to achieve printable concrete of varying rheological properties, and tested for slump and slump flow, setting/open time, rheological characterisation of various parameters, and buildability performance. The findings from this study revealed that the SCMs and the EM considered exhibited satisfactory material rheological performance and other unique characteristics identified as critical early-age properties for suitable 3D printability. In addition, near zero slumps were displayed for all the mixes and the slump flows were in the range of 140 – 160 mm after standard small slump flow table impact agitation, implying remarkable and adequate results for printable concrete. The penetration, bleeding, and segregation was also reduced when compared with no SCM inclusion. Conclusively, good relationships between the fresh properties and buildability quantification are also presented.

8 References

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6 Citations

  1. Zhang Nan, Sanjayan Jay (2025-08)
    Concrete 3D Printing and Digital Fabrication Technologies for Bridge Construction
  2. Ibrahim Kamoru, Zijl Gideon, Babafemi Adewumi (2024-08)
    Time-Dependent Behavior of 3D Printed Fiber-Reinforced Limestone-Calcined-Clay-Cement Concrete Under Sustained Loadings
  3. Ibrahim Kamoru, Zijl Gideon, Babafemi Adewumi (2024-04)
    Mitigation of Lack-of-Fusion in 3D Printed Limestone-Calcined-Clay-Cement Concrete Induced by Effective Micro-Organisms
  4. Babafemi Adewumi, Norval Chris, Kolawole John, Paul Suvash et al. (2024-04)
    3D Printed Limestone-Calcined-Clay-Cement Concrete Incorporating Recycled Plastic-Waste:
    RESIN8
  5. Ibrahim Kamoru, Zijl Gideon, Babafemi Adewumi (2023-10)
    Comparative Studies of LC³- and Fly-Ash-Based Blended Binders in Fiber-Reinforced Printed Concrete:
    Rheological and Quasi-Static Mechanical Characteristics
  6. Varela Hugo, Barluenga Gonzalo, Sonebi Mohammed (2023-07)
    Rheology Characterization of 3D Printing Mortars with Nano-Clays and Basalt-Fibers

BibTeX
@article{ibra_jaji_zijl_baba.2023.IoEMOotRaFSPoSBCfDF,
  author            = "Kamoru Ademola Ibrahim and Mustapha Bamidele Jaji and Gideon Pieter Adriaan Greeff van Zijl and Adewumi John Babafemi",
  title             = "Influence of Effective Micro-Organisms on the Rheology and Fresh State Properties of SCMs-Based Concrete for Digital Fabrication",
  doi               = "10.1016/j.matpr.2023.03.520",
  year              = "2023",
  journal           = "Materials Today: Proceedings",
}
Formatted Citation

K. A. Ibrahim, M. B. Jaji, G. P. A. G. van Zijl and A. J. Babafemi, “Influence of Effective Micro-Organisms on the Rheology and Fresh State Properties of SCMs-Based Concrete for Digital Fabrication”, Materials Today: Proceedings, 2023, doi: 10.1016/j.matpr.2023.03.520.

Ibrahim, Kamoru Ademola, Mustapha Bamidele Jaji, Gideon Pieter Adriaan Greeff van Zijl, and Adewumi John Babafemi. “Influence of Effective Micro-Organisms on the Rheology and Fresh State Properties of SCMs-Based Concrete for Digital Fabrication”. Materials Today: Proceedings, 2023. https://doi.org/10.1016/j.matpr.2023.03.520.