Next Article in Journal
The Influence of Oxygen Fugacity and Water on Silicate Crystallization in the Emeishan Large Igneous Province: Constraints from Thermodynamic Modeling Using MELTS
Previous Article in Journal
Lithogeochemical Investigation of the Big Bulk Cu-Au System, Northwestern British Columbia: Implications for Exploration in the Stewart–Iskut Mineral District, Canadian Cordillera
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
This is an early access version, the complete PDF, HTML, and XML versions will be available soon.
Article

Durability and Pore Structure Evolution of Foamed Lightweight Soil for Backfilling Under Wetting and Drying Cycles: Effects of Stabilization Systems

1
School of Engineering, Hangzhou City University, Hangzhou 310015, China
2
School of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, China
3
College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China
*
Author to whom correspondence should be addressed.
Minerals 2026, 16(9), 947; https://doi.org/10.3390/min16090947
Submission received: 20 August 2026 / Revised: 8 September 2026 / Accepted: 9 September 2026 / Published: 16 September 2026
(This article belongs to the Section Clays and Engineered Mineral Materials)

Abstract

Converting waste slurry from underground construction into foamed lightweight soil (FLS) offers a route to waste valorization, but its durability under repeated moisture changes requires evaluation. This study compared FLS prepared with ordinary Portland cement (OPC), alkali-activated slag–fly ash (AASF), and hybrid OPC-AASF. Engineering properties and resistance to 18 wetting and drying (W-D) cycles were evaluated alongside pore structure evolution, microstructural changes, and environmental and economic indicators. Increasing soil content reduced unconfined compressive strength (UCS), with OPC-AASF showing a more gradual decline than OPC. All systems exhibited non-monotonic strength evolution during cycling. After 18 cycles, the UCS losses relative to the 28 d baseline were 1.9%–5.8% for OPC-AASF and 12.3%–17.6% for AASF. In selected specimens, X-ray computed tomography showed that lower macroporosity did not necessarily correspond to better strength retention. The greater strength loss in AASF was accompanied by spatial pore enrichment, coarse low-sphericity pores, and local interfacial damage. X-ray diffraction indicated retention of the main crystalline phases, while scanning electron microscopy showed better local pore wall and interfacial continuity in OPC-AASF. On a common dry-solids mass basis, the hybrid mixture containing 40% soil required 76.0% less OPC than a theoretical OPC foam concrete without waste soil. The estimated carbon emissions, energy intensity, and material cost associated with raw material inputs were 72.2%, 68.0%, and 48.1% lower, respectively. These findings support OPC-AASF as a cement-reduced stabilization system for lightweight backfill, combining waste slurry reuse with strength retention under repeated moisture fluctuations.
Keywords: foamed lightweight soil; waste slurry; stabilization systems; wetting-drying cycles; pore structure foamed lightweight soil; waste slurry; stabilization systems; wetting-drying cycles; pore structure

Share and Cite

MDPI and ACS Style

Cui, Y.; Chen, S.; Xing, Z.; Wu, X.; Bu, F. Durability and Pore Structure Evolution of Foamed Lightweight Soil for Backfilling Under Wetting and Drying Cycles: Effects of Stabilization Systems. Minerals 2026, 16, 947. https://doi.org/10.3390/min16090947

AMA Style

Cui Y, Chen S, Xing Z, Wu X, Bu F. Durability and Pore Structure Evolution of Foamed Lightweight Soil for Backfilling Under Wetting and Drying Cycles: Effects of Stabilization Systems. Minerals. 2026; 16(9):947. https://doi.org/10.3390/min16090947

Chicago/Turabian Style

Cui, Yunliang, Siwei Chen, Zhiran Xing, Xuanyi Wu, and Fan Bu. 2026. "Durability and Pore Structure Evolution of Foamed Lightweight Soil for Backfilling Under Wetting and Drying Cycles: Effects of Stabilization Systems" Minerals 16, no. 9: 947. https://doi.org/10.3390/min16090947

APA Style

Cui, Y., Chen, S., Xing, Z., Wu, X., & Bu, F. (2026). Durability and Pore Structure Evolution of Foamed Lightweight Soil for Backfilling Under Wetting and Drying Cycles: Effects of Stabilization Systems. Minerals, 16(9), 947. https://doi.org/10.3390/min16090947

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop