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Open AccessDOI: 10.1007/s11771-025-5876-8Original Research

Simultaneous influences of nanomaterial and fiber reinforcement on enhancing the mechanical performance of geopolymer-stabilized soft clayey soils

KHOSRAVI Hassan¹,GOODARZI Amir Reza¹,LAJEVARDI Seyed Hamid¹

Islamic Azad University (Arak and Hamedan Branches), Iran

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Simultaneous influences of nanomaterial and fiber reinforcement on enhancing the mechanical performance of geopolymer-stabilized soft clayey soils
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Published In
Journal of Central South University
Published:November 9, 2025Edition:Vol. 32, Issue 11 • pp. 162-174Citation:KHOSRAVI Hassan et al. (2025), Journal of Central South University
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Keywords & Index Terms:soft clayey soilgeopolymer stabilizationnano-metakaolinpolypropylene fibersoil mechanical propertiescompression indexgeotechnical engineeringsustainable construction materials

Key Takeaways & Executive Findings

  • • Adding a slag-based geopolymer (LG) with 20% nano-metakaolin (NM) replacement increased soil strength by nearly 21 times and reduced the compression index by about 70%. • NM accelerates hydration reactions and forms a densely packed fabric, substantially improving the hydromechanical properties of soft clayey soils. • Raising the curing temperature approximately doubles the polymerization kinetics and soil solidification, but NM-containing composites may exhibit brittle behavior. • Incorporating polypropylene fibers into LGNM mixtures boosts energy absorption capacity by ≥10 times and enhances residual strength, offering economic, technical, and environmental benefits over traditional binders.
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Abstract

This study was designed to enhance the soft clayey soil treatment effects using an innovative mechanochemically activated geopolymer (GP) through the optimized inclusion of nano-metakaolin (NM) and polypropylene fiber. The study also investigated the possible improvements in the binding ability of GP stabilization under different curing regimes. To this end, binders including lime alone, LG (slag-based geopolymer), LGNM (nano-modified LG with NM) and LGNMF (LGNM/fiber) mixture were separately added to soft soil samples. The fabricated composites were then subjected to a set of macro and micro level tests. The results indicated that, adding LG binary with a 20% NM replacement can lead to a significant increase (by nearly 21 times) in soil strength and a remarkable decline (about 70%) in the compression index. In fact, NM can play a great role in accelerating the rate of hydration reactions and forming a densely packed fabric, which staggeringly improve the soil hydromechanical attributes. It was also observed that raising the curing temperature will effectively augment the polymerization kinetics, leading to a substantial increase (~2 times) in the soil solidification process. However, the stabilized composites containing NM may reveal a brittle nature under more intense stress. Such a potential drawback seems to be resolved by the integration of fibers within the matrix. LGNM combined with fiber would boost (≥10 times) the energy absorption capacity of the soil, notably enhancing its residual strength. Overall, LGNMF may not only feature a broader range of benefits (inc. economic, technical, environmental) compared to traditional binders but also promote the ductility of the GP materials.

1. Introduction

Soft and weak clayey soils may exhibit very high compressibility and low shear strength, and thus are often unsuitable for geotechnical structures and/or geo-environmental projects [1−3]. To address the limitations of problematic soils, one initial approach is to replace them with suitable materials. However, this solution may present its own economic and environmental challenges.

Chemical stabilization is one of the popular methods introduced many years ago in order to stabilize problematic soil. In this case, adding binders can improve the interfacial bonds among the soil particles by creating cementitious compounds, thereby boosting both strength and compressibility of the soil [4].

Conventional binders (inc. cement and lime) have been widely utilized to address the challenges associated with soft clayey soils, even if these materials may show limited efficiency in certain conditions such as at the presence of high sulfate dosages and/or in cold environments [5, 6]. Moreover, the production of cement and lime is generally associated with adverse environmental impacts (e.g., CO2 emissions) and high energy consumption. Thus, in recent years, numerous studies have been performed to develop alternative amendments to reduce production costs, energy consumption and environment impacts while enhancing the geotechnical properties of the stabilized soils [3, 7, 8].

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Cite This Research Paper
KHOSRAVI Hassan, GOODARZI Amir Reza, LAJEVARDI Seyed Hamid (2025). Simultaneous influences of nanomaterial and fiber reinforcement on enhancing the mechanical performance of geopolymer-stabilized soft clayey soils. Journal of Central South University. https://doi.org/10.1007/s11771-025-5876-8
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Frequently Asked Questions

What is the main objective of this study?

The study aims to enhance the treatment of soft clayey soils using an innovative mechanochemically activated geopolymer combined with nano-metakaolin and polypropylene fibers, and to evaluate the improvements in mechanical performance under different curing regimes.

How does nano-metakaolin improve geopolymer-stabilized soil?

Nano-metakaolin accelerates hydration reactions and promotes a densely packed fabric, leading to a nearly 21-fold increase in soil strength and a 70% reduction in the compression index when incorporated at a 20% replacement level.

What role do polypropylene fibers play in the treatment?

Polypropylene fibers overcome the brittle nature of NM-containing geopolymer composites by boosting the energy absorption capacity by at least 10 times and notably enhancing the residual strength, thereby improving ductility.

What are the environmental benefits of using this geopolymer treatment?

The proposed geopolymer treatment reduces reliance on conventional cement and lime, lowering CO2 emissions, energy consumption, and production costs while offering comparable or superior mechanical performance.

How does curing temperature affect the stabilization process?

Raising the curing temperature effectively augments polymerization kinetics, leading to a substantial increase of about 2 times in the soil solidification process.

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