Feasibility-Assessment of 3D Printability of Portland-Cement-Steel-Slag Blended Mortar (2024-09)¶
, Bernal Susan, , , Shafei Behrouz, Mahoutian Mehrdad,
Contribution - Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, pp. 234-243
Abstract
This study investigates the potential of using steel slag blended grouts for 3D concrete printing applications. Steel slag, a by-product of the steel-making industry, is considered chemically less reactive compared to other supplementary cementitious materials. However, finely ground steel slag can influence the fresh-state properties of Portland cement mortars used for 3D printing. The effect of steel slag addition on the flow and static yield strength of mortars made with different Portland cement to steel slag ratios was evaluated. Effectiveness of commercial chemical admixtures enhancing the extrusion properties of Portland cement–steel slag blended mortar at the mixing stage, and further for the on-set of mortar after extrusion from the printing nozzle was determined for one selected mix design. Results indicate that adding steel slag reduces the static yield strength of the mix design required for structure build-up. Nevertheless, the accelerating admixture at the printing nozzle of the 3D printer (bi-component, 2K) helps gain the static yield strength required for buildability. Findings reveal that accelerator admixture has no impact on the mechanical performance of mortar containing 50 wt.% steel slag of the solids. However, superplasticizers can influence the flow retention property like the open time of the mortar. On the other hand, a higher proportion of steel slag has proven beneficial in inducing better extrusion properties. Printing of laboratory-scale hollow cylindrical geometry with same selected mix design has shown better buildability without any yielding of printed layer or buckling. In general, this study gives a perspective on using Portland cement–steel slag blended mortar for 3D printing applications.
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2 References
- Ma Guowei, Yan Yufei, Zhang Mo, Sanjayan Jay (2022-05)
Effect of Steel-Slag on 3D Concrete Printing of Geopolymer with Quaternary Binders - Yu Qian, Zhu Binrong, Li Xuesen, Meng Lingqi et al. (2023-04)
Investigation of the Rheological and Mechanical Properties of 3D Printed Eco-Friendly Concrete with Steel-Slag
2 Citations
- Raza Saim, Sakha Mahsa, Hassan Zohaib, Manshadi Behzad et al. (2025-05)
Flexural Behavior of Stay-in-Place Load-Bearing 3D-Printed Concrete Formwork for Ribbed Slabs - Hassan Zohaib, Raza Saim, Shafei Behrouz, Mahoutian Mehrdad et al. (2024-11)
Innovations to Improve 3D Concrete Printing of Portland Cement-Steel-Slag Blended Mortars
BibTeX
@inproceedings{hass_bern_raza_kamm.2024.FAo3PoPCSSBM,
author = "Zohaib Hassan and Susan A. Bernal and Saim Raza and David S. Kammer and Behrouz Shafei and Mehrdad Mahoutian and Moslem Shahverdi",
title = "Feasibility-Assessment of 3D Printability of Portland-Cement-Steel-Slag Blended Mortar",
doi = "10.1007/978-3-031-70031-6_28",
year = "2024",
volume = "53",
pages = "234--243",
booktitle = "Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication",
editor = "Dirk Lowke and Niklas Freund and David Böhler and Friedrich Herding",
}
Formatted Citation
Z. Hassan, “Feasibility-Assessment of 3D Printability of Portland-Cement-Steel-Slag Blended Mortar”, in Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, 2024, vol. 53, pp. 234–243. doi: 10.1007/978-3-031-70031-6_28.
Hassan, Zohaib, Susan A. Bernal, Saim Raza, David S. Kammer, Behrouz Shafei, Mehrdad Mahoutian, and Moslem Shahverdi. “Feasibility-Assessment of 3D Printability of Portland-Cement-Steel-Slag Blended Mortar”. In Proceedings of the 4th RILEM International Conference on Concrete and Digital Fabrication, edited by Dirk Lowke, Niklas Freund, David Böhler, and Friedrich Herding, 53:234–43, 2024. https://doi.org/10.1007/978-3-031-70031-6_28.