The potential of utilising steel slag for the development of artificial aggregates was explored. The effects of particle size and carbonation on the particle strength, phase composition and microstructural characteristics of the artificial aggregates were systematically evaluated. The results reveal that mechanical activation through ball milling significantly refine the particle size dimensions of the steel slag, and the minimum particle size is achieved after 90 min of milling. The carbonation curing process effectively converts free calcium oxide into stable calcium carbonate, with calcite and aragonite phases forming under high and low carbon dioxide concentrations, respectively. These carbonate formations contribute to the increased mechanical properties of the aggregates. The optimised artificial aggregates exhibit superior performance, enabling the production of concrete with good workability and a compressive strength of 35.8 MPa at 28 days. Moreover, a comparative life cycle assessment indicates that steel slag-based artificial aggregates reduce carbon dioxide emissions by 42.3%–63.4% compared to natural lightweight aggregates, which underscores their superior environmental performance. These findings highlight the potential of steel slag as a sustainable raw material within the framework of artificial aggregate production, offering a promising solution for high value utilisation of industrial waste in the construction industry.
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Research Article|
August 12 2026
Effects of particle size and carbonation on steel slag-based artificial aggregates
Ting Zhang;
Ting Zhang
College of Civil Engineering,
Zhejiang University of Technology
, Hangzhou, China
; Zhejiang Key Laboratory of Green Construction and Intelligent Operation & Maintenance for Coastal Infrastructure, Zhejiang University of Technology, Hangzhou, China
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Xinpeng Wang;
Xinpeng Wang
College of Civil Engineering,
Zhejiang University of Technology
, Hangzhou, China
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Jianhuan Hong;
Jianhuan Hong
College of Civil Engineering,
Zhejiang University of Technology
, Hangzhou, China
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Tao Shi
;
College of Civil Engineering,
Zhejiang University of Technology
, Hangzhou, China
; Zhejiang Key Laboratory of Green Construction and Intelligent Operation & Maintenance for Coastal Infrastructure, Zhejiang University of Technology, Hangzhou, ChinaCorresponding author Tao Shi (shitao@zjut.edu.cn)
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David J. Corr
David J. Corr
Civil and Environmental Engineering,
Northwestern University
, Evanston, USA
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Corresponding author Tao Shi (shitao@zjut.edu.cn)
Publisher: Emerald Publishing
Received:
September 05 2025
Accepted:
July 16 2026
Online ISSN: 1751-7680
Print ISSN: 1478-4629
Funding
Funding Group:
- Award Group:
- Funder(s): Development Program of China
- Award Id(s): 2023YFE0121700
- Funder(s):
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): 52408302,52378270,52402036
- Funder(s):
- Award Group:
- Funder(s): Zhejiang Provincial ‘Jianbing’ and ‘Lingyan’ R&D Programmes
- Award Id(s): 2024C04053
- Funder(s):
- Award Group:
- Funder(s): Innovation Yongjiang 2035” Key R&D Programme
- Award Id(s): 2024Z087
- Funder(s):
- Award Group:
- Funder(s): Zhejiang Province Postdoctoral Research Excellence Funding Program
- Award Id(s): ZJ2025086
- Funder(s):
- Award Group:
- Funder(s): Laboratory of Advanced Civil Engineering Materials (Tongji University)
- Award Id(s): 202503
- Funder(s):
- Award Group:
- Funder(s): Science and Technology Plan Project of Taizhou
- Award Id(s): 25gya33
- Funder(s):
- Funding Statement(s): The authors would like to acknowledge the support from the National Key Research and Development Program of China (2023YFE0121700), the National Natural Science Foundation of China (52408302, 52378270, 52402036), the Zhejiang Provincial ‘Jianbing’ and ‘Lingyan’ R&D Programmes (2024C04053) and Innovation Yongjiang 2035” Key R&D Programme (Grant No. 2024Z087), Zhejiang Province Postdoctoral Research Excellence Funding Program (ZJ2025086), Key Laboratory of Advanced Civil Engineering Materials (Tongji University), Ministry of Education (202503) and Science and Technology Plan Project of Taizhou (25gya33).
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
Proceedings of the Institution of Civil Engineers - Engineering Sustainability 1–15.
Article history
Received:
September 05 2025
Accepted:
July 16 2026
Citation
Zhang T, Wang X, Hong J, Shi T, Corr DJ (2026;), "Effects of particle size and carbonation on steel slag-based artificial aggregates". Proceedings of the Institution of Civil Engineers - Engineering Sustainability, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1680/jensu.25.00196
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