3D Printable Ca(OH)2-Based Geopolymer Concrete with Steel Fiber Reinforcement (2025-02)¶
, , , Wyrzykowski Mateusz, Sirtoli Davide, Lura Pietro, Mansoor Bilal, Masad Eyad
Journal Article - Materials and Structures, Vol. 58, Iss. 2
Abstract
This study investigates the impact of varying steel fiber (SF) content (0%, 0.8%, 1.0%, and 1.2% by volume) on the mechanical and durability properties of 3D-printed Ca(OH)2-activated geopolymer concrete (GPC). The addition of 1.2% SF improved flexural strength by 69% at 7 days and 16% at 28 days, while tensile strength more than doubled to 3.75 MPa at 28 days. Although compressive strength remained unaffected at 43 MPa, SF enhanced interlayer bond strength by 20%, which is crucial for layer cohesion in 3D-printed structures. Additionally, the elastic modulus increased by 7%, contributing to improved stiffness. Durability assessments, including autogenous shrinkage and self-induced stress, indicated a slight reduction in shrinkage of SF-reinforced samples, with no significant effect on self-induced stress. Microstructural analysis using scanning electron microscopy (SEM) and X-ray micro-computed tomography (µCT) demonstrated the crack-bridging behavior of steel fibers, enhancing ductility and fracture resistance. There was a slight increase in porosity (5.34%) of SF-reinforced samples without negatively affecting their mechanical properties. Notably, SF improved early-age toughness and controlled crack propagation across printed layers, addressing a critical challenge in 3D-printed concrete. The novelty of this work lies in successfully reinforcing 3D-printed Ca(OH)2-activated GPC with recycled steel fibers, enhancing mechanical properties, interlayer bonding, and durability without compromising printability. This study offers a sustainable reinforcement strategy for 3D printing in construction.
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16 References
- Ahmed Ghafur, Askandar Nasih, Jumaa Ghazi (2022-07)
A Review of Large-Scale 3DCP:
Material-Characteristics, Mix-Design, Printing-Process, and Reinforcement-Strategies - Asprone Domenico, Menna Costantino, Bos Freek, Salet Theo et al. (2018-06)
Rethinking Reinforcement for Digital Fabrication with Concrete - Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
3D Printing Using Concrete-Extrusion:
A Roadmap for Research - Hambach Manuel, Rutzen Matthias, Volkmer Dirk (2019-02)
Properties of 3D-Printed Fiber-Reinforced Portland Cement-Paste - Kruger Jacques, Plessis Anton, Zijl Gideon (2020-12)
An Investigation into the Porosity of Extrusion-Based 3D Printed Concrete - Lv Chun, Shen Hongtao, Liu Jie, Wu Dan et al. (2022-11)
Properties of 3D Printing Fiber-Reinforced Geopolymers Based on Inter-Layer Bonding and Anisotropy - Masoud Laith, Hammoud Ahmad, Mortada Youssef, Masad Eyad (2024-06)
Rheological, Mechanical, and Microscopic Properties of Polypropylene-Fiber-Reinforced Geopolymer Concrete for Additive Manufacturing - Menna Costantino, Mata-Falcón Jaime, Bos Freek, Vantyghem Gieljan et al. (2020-04)
Opportunities and Challenges for Structural Engineering of Digitally Fabricated Concrete - Mortada Youssef, Masad Eyad, Kogbara Reginald, Mansoor Bilal et al. (2023-06)
Development of Ca(OH)2-Based Geopolymer for Additive Manufacturing Using Construction Wastes and Nano-Materials - Mortada Youssef, Mohammad Malek, Mansoor Bilal, Grasley Zachary et al. (2022-09)
Development of Test-Methods to Evaluate the Printability of Concrete Materials for Additive Manufacturing - Nerella Venkatesh, Hempel Simone, Mechtcherine Viktor (2019-02)
Effects of Layer-Interface Properties on Mechanical Performance of Concrete Elements Produced by Extrusion-Based 3D Printing - Panda Biranchi, Tan Ming (2018-03)
Experimental Study on Mix Proportion and Fresh Properties of Fly-Ash-Based Geopolymer for 3D Concrete Printing - Sikora Paweł, Techman Mateusz, Federowicz Karol, Khayatt Ahmed et al. (2022-07)
Insight into the Microstructural and Durability Characteristics of 3D Printed Concrete:
Cast versus Printed Specimens - Tay Yi, Panda Biranchi, Paul Suvash, Mohamed Nisar et al. (2017-05)
3D Printing Trends in Building and Construction Industry:
A Review - Yang Yekai, Wu Chengqing, Liu Zhongxian, Wang Hailiang et al. (2021-10)
Mechanical Anisotropy of Ultra-High-Performance Fiber-Reinforced Concrete for 3D Printing - Zhong Hui, Zhang Mingzhong (2022-02)
3D Printing Geopolymers:
A Review
4 Citations
- Tushar Fazlul, Hasan Mehedi, Hasan Kamrul, Mawa Jannatul et al. (2026-01)
Factors Affecting Flowability and Rheological Behavior of 3D Printed Concrete:
A Comprehensive Review - Murali Gunasekaran, Kravchenko Ekaterina, Yuvaraj Divya, Avudaiappan Siva (2025-12)
Next-Generation Green Construction:
3D-Printed Geopolymer Concrete with Optimized Rheology, Mechanical Performance, and Environmental Efficiency - Philip Nivin, Jędrzejewska Agnieszka, Mathew Ashitta, Uthuppan Susan (2025-09)
Steel Fiber Reinforcement for Improved Structural Performance and Durability of 3D Printed Mortar in Marine Environments - Irshidat Mohammad, Albeitjali Naeem, Amjad Umar, Alnuaimi Hamad et al. (2025-05)
From Waste to Strength:
Recycled Steel Fibers for Sustainable 3D Printing of Cementitious Composites
BibTeX
@article{mort_hamm_maso_wyrz.2025.3PCO2BGCwSFR,
author = "Youssef Mortada and Ahmad Hammoud and Laith Masoud and Mateusz Wyrzykowski and Davide Sirtoli and Pietro Lura and Bilal Mansoor and Eyad Masad",
title = "3D Printable Ca(OH)2-Based Geopolymer Concrete with Steel Fiber Reinforcement",
doi = "10.1617/s11527-025-02600-5",
year = "2025",
journal = "Materials and Structures",
volume = "58",
number = "2",
}
Formatted Citation
Y. Mortada, “3D Printable Ca(OH)2-Based Geopolymer Concrete with Steel Fiber Reinforcement”, Materials and Structures, vol. 58, no. 2, 2025, doi: 10.1617/s11527-025-02600-5.
Mortada, Youssef, Ahmad Hammoud, Laith Masoud, Mateusz Wyrzykowski, Davide Sirtoli, Pietro Lura, Bilal Mansoor, and Eyad Masad. “3D Printable Ca(OH)2-Based Geopolymer Concrete with Steel Fiber Reinforcement”. Materials and Structures 58, no. 2 (2025). https://doi.org/10.1617/s11527-025-02600-5.