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Bacteria-Based Crack-Healing of 3D Printed PVA-Fiber-Reinforced Geopolymer Mortars (2024-02)

10.1016/j.jobe.2024.108934

Ziada Mahmoud,  Tanyildizi Harun,  Seloglu Maksut,  Coskun Ahmet
Journal Article - Journal of Building Engineering, Vol. 86, No. 108934

Abstract

Geopolymers have been regarded as a promising environmentally friendly alternative to cementitious materials in 3D printing. In this study, 3D-printed fly ash based geopolymer mortars containing silica fume were produced with PVA fiber at 0%, 0.5%, 1%, and 1.5% ratios. Cracks were created in the specimens using flexural strength test after 28 days. Then, bacterial self-healing process was applied to the half of cracked samples and the remaining cracked samples were used as control samples. Sporosarcina pasteurii was used for healing. Lastly, the visual inspection, flexural strength, compressive strength, and water absorption analyzes were conducted mechanical properties to evaluate the healing performance of 3D-geopolymer samples containing PVA. In addition, the samples were subjected to microstructural examination using scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), and Fourier transform infrared spectroscopy (FTIR) to determine the changes in the microstructural of bacterial based healing. As a result, CaCO3 precipitates, which are the bacterial healing output, filled the cracks and boosted the mechanical characteristics of 3D-geopolymer. The application in 3D-printed PVA fiber reinforced geopolymer mortars of bacterial healing resulted in a significant 36.23% improvement in flexural strength and an 11.57% reduction in the capillary water absorption coefficient compared to the non-healed samples.

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6 Citations

  1. Safdar Gardezi Syed, Tanyildizi Harun, Haroglu Hasan, Coskun Ahmet (2025-09)
    Acid Attack Performance of 3D Printing Nano-ZnO Modified Geopolymer Mortar
  2. Singh Amardeep, Anand Kamal, Liu Qiong, Tam Vivian et al. (2025-07)
    Enhancing Interlayer Bonding in 3D Printed Concrete Using Bacteria-Based Biomineralization
  3. Jaji Mustapha, Babafemi Adewumi, Zijl Gideon (2025-05)
    Mechanical Performance of Extrusion-Based Two-Part 3D-Printed Geopolymer Concrete:
    A Review of Advances in Laboratory and Real-Scale Construction Projects
  4. Tanyildizi Harun, Coskun Ahmet, Seloglu Maksut, Durmaz Taner (2025-01)
    Examination of Mechanical Properties of 3D Printed Geopolymer-Mortar Using the Taguchi -Method
  5. Han Kang, Gu Fei, Yang Huashan, Tian Xinchen et al. (2024-09)
    PVA-Fiber-Reinforced Red Mud-Based Geopolymer for 3D Printing:
    Printability, Mechanical Properties and Microanalysis
  6. Tanyildizi Harun, Seloglu Maksut, Coskun Ahmet (2024-08)
    The Effect of Nano-Zinc-Oxide on Freeze-Thaw-Resistance of 3D Printed Geopolymer Mortars

BibTeX
@article{ziad_tany_selo_cosk.2024.BBCHo3PPFRGM,
  author            = "Mahmoud Ziada and Harun Tanyildizi and Maksut Seloglu and Ahmet Coskun",
  title             = "Bacteria-Based Crack-Healing of 3D Printed PVA-Fiber-Reinforced Geopolymer Mortars",
  doi               = "10.1016/j.jobe.2024.108934",
  year              = "2024",
  journal           = "Journal of Building Engineering",
  volume            = "86",
  pages             = "108934",
}
Formatted Citation

M. Ziada, H. Tanyildizi, M. Seloglu and A. Coskun, “Bacteria-Based Crack-Healing of 3D Printed PVA-Fiber-Reinforced Geopolymer Mortars”, Journal of Building Engineering, vol. 86, p. 108934, 2024, doi: 10.1016/j.jobe.2024.108934.

Ziada, Mahmoud, Harun Tanyildizi, Maksut Seloglu, and Ahmet Coskun. “Bacteria-Based Crack-Healing of 3D Printed PVA-Fiber-Reinforced Geopolymer Mortars”. Journal of Building Engineering 86 (2024): 108934. https://doi.org/10.1016/j.jobe.2024.108934.