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March 17, 2026Scientific Reports1 citationsOpen Access

Performance evaluation of stabilized clay using sodium lignosulphonate

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AKAshutosh KumarPKPrashant KumarACAwdhesh Kumar Choudhary

Key Points

  • The study aims to evaluate the effectiveness of sodium lignosulphonate as a stabilizer for low-plasticity clay to improve its engineering properties.
  • Laboratory tests conducted included Atterberg's limit, unconfined compression strength (UCS), swell pressure, and California bearing ratio (CBR).
  • Soil samples were treated with varying percentages of sodium lignosulphonate, particularly focusing on 0.75% LS content.
  • Microstructural analysis was performed to assess the bonding effects of sodium lignosulphonate on soil particles.
  • As sodium lignosulphonate content increases, the plasticity index of the soil decreases while UCS values increase, peaking at 0.75% LS content.
  • Higher sodium lignosulphonate dosages (> 0.75%) led to a reduction in strength due to excessive polymer formation and particle repulsion.
  • Significant improvements in CBR were observed for soil treated with 0.75% LS after a 14-day curing period.

Abstract

Rapid urbanization often demands the development of infrastructure on challenging soils, necessitating strengthening and improvement. This study explores the application of Sodium Lignosulphonate (LS), a by-product of the paper and wood pulp industry, as an eco-friendly, non-toxic stabilizer for low-plasticity clay (CL, PI ≈ 24%). Through a series of laboratory tests, including Atterberg's limit, unconfined compression strength (UCS), swell pressure, and CBR, the engineering properties of the stabilized soil were assessed. The results show that as the LS content increases, the plasticity index (PI) of the soil decreases, and the UCS value increases, reaching a maximum UCS value at 0.75% LS content. Higher LS dosages (> 0.75%) resulted in gradual strength reduction due to excessive polymer chain formation and particle repulsion. Additionally, CBR tests on the soil treated with 0.75% LS after a 14-day curing period revealed significant improvements. Microstructural analysis demonstrated that LS created a bonding substance that coated soil particles, filling pores and binding them together, thereby enhancing soil stability and strength. Furthermore, increasing the curing time further enhanced strength and reduced swelling characteristics, as LS established a strong bonding between soil particles. This research underscores the potential of LS as a soil stabilizer, offering durability and sustainability to infrastructure in urban areas facing challenging soil conditions.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef12deb47d591b8c5231https://doi.org/10.1038/s41598-026-44155-7
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