Mechanical Properties, 3D Printing and Environmental Performance of Ordinary Portland Cement (OPC) Mortars Containing Calcite Rich Residue from Stabilised Basic Oxygen Furnace Slag (2026-04)¶
, Cantaluppi Marco, , Toska Klajdi, Tanskanen Pekka, Yliniemi Juho, Kilpimaa Katja
Journal Article - Cleaner Engineering and Technology, No. 101206
Abstract
The metallurgy industry generates slags, and their recycling is crucial for promoting a circular economy and addressing environmental management concerns. This study investigated the potential for upcycling a calcite-rich stream, derived from vanadium recovery from Basic Oxygen Furnace (BOF) slag, as a Supplementary Cementitious Material (SCM) in concrete. Blended pastes and mortars were prepared by partially replacing cement with the residue. The effects of cement substitution were evaluated using isothermal calorimetry, rheology and consistency tests, X-ray diffraction (XRD), and Scanning Electron Microscopy coupled with Energy Dispersive X-ray Spectroscopy (SEM-EDS). The results showed that the residue consisted mainly of calcite and aragonite, with a randomly shaped morphology and a median particle size of around 2 μm. The residue exhibited moderate reactivity as a SCM, assessed by the Rapid, Relevant, Reliable (R3) test. After 28 days, the compressive strength of samples with up to 30% cement replacement satisfied the 75% strength activity index requirement. Environmental leaching tests conducted on the prepared mortars demonstrated significant immobilization of heavy metals from the residue within the concrete matrix. Preliminary 3D printing tests indicated that the residue enhanced printability by reducing concrete segregation, due to its finer particles. These results highlight the potential for valorising calcium-rich side streams and similar waste materials, contributing to improved circular economy practices and reduced environmental impact in both the metallurgy and construction industries.
¶
9 References
- Alghamdi Hussam, Nair Sooraj, Neithalath Narayanan (2019-02)
Insights into Material-Design, Extrusion Rheology, and Properties of 3D Printable Alkali-Activated Fly-Ash-Based Binders - Ding Yao, Liu Jiepeng, Ou Xingjian, Nishiwaki Tomoya et al. (2024-08)
3D Printing Hybrid-Fiber-Reinforced Engineered Cementitious Composites:
Feasibility in Long-Open-Time Applications - Jin Peng, Hasany Masoud, Kohestanian Mohammad, Mehrali Mehdi (2024-10)
Micro/Nano Additives in 3D Printing Concrete:
Opportunities, Challenges, and Potential Outlook in Construction Applications - 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 - Noaimat Yazeed, Chougan Mehdi, Sambucci Matteo, Valente Marco et al. (2025-06)
Optimising Limestone Calcined Clay Cement Containing Excavated Low-Grade Waste Clay for 3D Printing Applications - Panda Biranchi, Ruan Shaoqin, Unluer Cise, Tan Ming (2018-11)
Improving the 3D Printability of High-Volume Fly-Ash Mixtures via the Use of Nano-Attapulgite-Clay - Peng Yiming, Unluer Cise (2022-12)
Development of Alternative Cementitious Binders for 3D Printing Applications:
A Critical Review of Progress, Advantages and Challenges - Tao Yaxin, Rahul Attupurathu, Lesage Karel, Tittelboom Kim et al. (2021-11)
Mechanical and Microstructural Properties of 3D Printable Concrete in the Context of the Twin-Pipe Pumping-Strategy - Tay Yi, Li Mingyang, Tan Ming (2019-04)
Effect of Printing Parameters in 3D Concrete Printing:
Printing Region and Support Structures
0 Citations
BibTeX
@article{lemo_cant_fale_tosk.2026.MP3PaEPoOPCOMCCRRfSBOFS,
author = "Patrick Ninla Lemougna and Marco Cantaluppi and Flora Faleschini and Klajdi Toska and Pekka Tanskanen and Juho Yliniemi and Katja Kilpimaa",
title = "Mechanical Properties, 3D Printing and Environmental Performance of Ordinary Portland Cement (OPC) Mortars Containing Calcite Rich Residue from Stabilised Basic Oxygen Furnace Slag",
doi = "10.1016/j.clet.2026.101206",
year = "2026",
journal = "Cleaner Engineering and Technology",
pages = "101206",
}
Formatted Citation
P. N. Lemougna, “Mechanical Properties, 3D Printing and Environmental Performance of Ordinary Portland Cement (OPC) Mortars Containing Calcite Rich Residue from Stabilised Basic Oxygen Furnace Slag”, Cleaner Engineering and Technology, p. 101206, 2026, doi: 10.1016/j.clet.2026.101206.
Lemougna, Patrick Ninla, Marco Cantaluppi, Flora Faleschini, Klajdi Toska, Pekka Tanskanen, Juho Yliniemi, and Katja Kilpimaa. “Mechanical Properties, 3D Printing and Environmental Performance of Ordinary Portland Cement (OPC) Mortars Containing Calcite Rich Residue from Stabilised Basic Oxygen Furnace Slag”. Cleaner Engineering and Technology, 2026, 101206. https://doi.org/10.1016/j.clet.2026.101206.