Open Access
Open access
Journal of Cleaner Production, volume 402, pages 136824

Reuse of soil-like material solidified by a biomass fly ash-based binder as engineering backfill material and its performance evaluation

Zhifa Qin 1, 2, 3, 4
Jiaxu Jin 3
Lei Liu 1, 2, 4
Yi Zhang 5
Yongle Du 1, 2, 4, 6
Yong Yang 7
Shenghao Zuo 8
1
 
Hubei Province Key Laboratory of Contaminated Sludge and Soil Science and Engineering, Wuhan, Hubei, 430071, China
2
 
IRSM-CAS/HK Poly U Joint Laboratory on Solid Waste Science, Wuhan, Hubei, 430071, China
4
 
State Key Laboratory of Geomechanics and Geotechnical Engineering, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan, Hubei, 430071, China
5
 
State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China
7
 
Beijing Water Science and Technology Institute, Beijing Engineering Technique Research Center for Exploration and Utilization of Non-Conventional Water Resources and Water Use Efficiency, Beijing, 100048, China
Publication typeJournal Article
Publication date2023-05-01
scimago Q1
SJR2.058
CiteScore20.4
Impact factor9.7
ISSN09596526, 18791786
Industrial and Manufacturing Engineering
Renewable Energy, Sustainability and the Environment
General Environmental Science
Building and Construction
Strategy and Management
Abstract
The reuse of soil-like material (SLM) obtained from landfill mining as engineering backfill materials contributes to sustainable waste management. In this paper, a new biomass fly ash-based binder (BB) containing biomass fly ash (BFA), carbide slag (CS), and phosphogypsum (PG) is designed to solidify the SLMs. The mechanical properties, permeability, microstructure, and physicochemical characteristics of the BB-solidified SLM are comprehensively characterized. The optimum proportion of ternary BBs consisting of 80% BFA, 15% CS, and 5% PG was determined through tests on paste samples. The different landfill depths of SLMs show significant variability in solidification/stabilization (S/S) effects due to their different physicochemical properties. The mechanical and permeability properties of BB-solidified SLM improve with the increasing BB content and the age of solidification. Microstructural and phase analyses indicated the formation of significant amounts of ettringite crystals and C-(A)-S-H gels were generated by the pozzolanic reaction, forming a stable and dense microstructure. The variations in pH and conductivity were correlated with the development of mechanical properties. Moreover, the organic matter content and leached heavy metal content of SLM2 and SLM3 after S/S treatment did not exceed the specified limits. This study can provide theoretical guidance for the resource utilization of the stabilized/solidified SLMs.
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