4.6 Article

Immobilization and leaching characteristics of fluoride from phosphogypsum-based cemented paste backfill

出版社

SPRINGER
DOI: 10.1007/s12613-021-2274-6

关键词

cemented paste backfill; phosphogypsum; leaching behavior; fluoride

资金

  1. Natural Science Foundation of Hunan Province, China [2020JJ5718]
  2. China Scholarship Council [CSC201906370062]
  3. National Natural Science Foundation of China [52004330, 52074351]

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The study evaluated the feasibility of using cemented paste backfill for the remediation of phosphogypsum and examined fluorine immobilization mechanisms. Through physico-chemical analyses, it was discovered that calcium silicate hydrate gel is associated with fluorine retention. However, further modifications are needed for the simulation to be used as a predictive tool for phosphogypsum management options.
Phosphogypsum (PG) is a typical by-product of phosphoric acid and phosphate fertilizers during acid digestion. The application of cemented paste backfill (CPB) has been feasibly investigated for the remediation of PG. The present study evaluated fluorine immobilization mechanisms and attempted to construct a related thermodynamic and geochemical modeling to describe the related stabilization performance. Physico-chemical and mineralogical analyses were performed on PG and hardened PG-based CPB (PCPB). The correlated macro- and micro-structural properties were obtained from the analysis of the combination of unconfined compressive strength and scanning electron microscopy coupled with energy-dispersive X-ray spectroscopy imaging. Acid/base-dependent leaching tests were performed to ascertain fluoride reachability. In addition, Gibbs Energy Minimization Software and PHREEQC were applied as tools to characterize the PCPB hydration and deduce its geochemical characteristics. The results proved that multiple factors are involved in fluorine stabilization, among which the calcium silicate hydrate gel was found to be associated with retention. Although the quantitative comparison with the experimental data shows that further modification should be introduced into the simulation before being used as a predictive implement to determine PG management options, the importance of acid/base concentration in regulating the leaching behavior was confirmed. Moreover, the modeling enabled the identification of the impurity phases controlling the stability and leachability.

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