This study develops a solid waste–based binder (SWB) as a sustainable alternative to ordinary Portland cement (OPC) for deep soil mixing (DSM) applications. The binder was formulated using steel slag (SS), mineral slag (MS), two desulfurisation by-products (DP-1 and DP-2), and a reduced amount of OPC. The optimal composition, determined by way of response surface methodology, was MS:SS:DP-1:DP-2:OPC = 40:20:15:5:20. The SWB-stabilised silt achieved unconfined compressive strengths (UCS) of 1.99 MPa at 7 days and 3.21 MPa at 28 days, with notable synergistic effects between MS and SS. A predictive model for 28-day UCS incorporating moisture and binder content was established. Hydration reactions produced cementitious gels with minimal heavy metal leaching. Full-scale DSM pile tests showed that SWB-treated piles (60 and 70 kg/m) reached bearing capacities of 220 and 260 kN, outperforming OPC-treated piles (160 kN at 60 kg/m), and exhibited higher quality indices. SWB-treated piles reduce total carbon dioxide emissions by more than 70% and binder material costs by over 60% compared with OPC, yielding a more than three-fold improvement in carbon efficiency. As a sustainable binder with technical, environmental, and economic viability, SWB directly contributes to UN SDG 11 by improving urban infrastructure in climate resilience and resource efficiency.
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Research Article|
March 03 2026
Binder derived from industrial solid waste: a low-carbon attempt for deep soil mixing pile
Peng Jiang;
Peng Jiang
School of Civil Engineering,
Shandong University
, Jinan, China
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Xinzhuang Cui;
School of Civil Engineering,
Chongqing University
, Chongqing, China
Corresponding author Xinzhuang Cui (cuixz@sdu.edu.cn)
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Qing Jin;
Qing Jin
School of Civil Engineering,
Shandong University
, Jinan, China
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Sheqiang Cui;
Sheqiang Cui
School of Civil Engineering,
Shandong University
, Jinan, China
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Xiongying Ma;
Xiongying Ma
School of Civil Engineering,
Chongqing University
, Chongqing, China
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Xiaoning Zhang
Xiaoning Zhang
School of Civil Engineering,
Chongqing University
, Chongqing, China
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Corresponding author Xinzhuang Cui (cuixz@sdu.edu.cn)
Competing interests The authors declare no competing financial interest.
Publisher: Emerald Publishing
Received:
October 08 2025
Accepted:
December 23 2025
Online ISSN: 2051-803X
Funding
Funding Group:
- Award Group:
- Funder(s): National Key R&D Programme of China
- Award Id(s): 2022YFB2601900
- Funder(s):
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): 52027813,52478456,52178429,U22A20235
- Funder(s):
- Award Group:
- Funder(s): Gansu Provincial Construction Science and Technology Project
- Award Id(s): JK2024-1
- Funder(s):
- Award Group:
- Funder(s): Natural Science Foundations of Shandong Province, China
- Award Id(s): ZR2020ME242
- Funder(s):
- Funding Statement(s): This work is supported by the National Key R&D Programme of China (Grant No. 2022YFB2601900), the National Natural Science Foundation of China (Grant Nos. 52027813, 52478456, 52178429, and U22A20235), the Gansu Provincial Construction Science and Technology Project (Grant No. JK2024-1), and the Natural Science Foundations of Shandong Province, China (Grant No. ZR2020ME242).
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
Environmental Geotechnics 1–14.
Article history
Received:
October 08 2025
Accepted:
December 23 2025
Citation
Jiang P, Cui X, Jin Q, Cui S, Ma X, Zhang X (2026;), "Binder derived from industrial solid waste: a low-carbon attempt for deep soil mixing pile". Environmental Geotechnics, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1680/jenge.25.00185
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