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Published August 2023 | Version v1
Journal article

Rare earths leaching from Philippine phosphogypsum using Taguchi method, regression, and artificial neural network analysis

  • 1. Research and Development Center, Rizal Technological University, Boni Ave., 1550 Mandaluyong City (Philippines)
  • 2. Department of Science and Technology, Philippine Nuclear Research Institute (DOST-PNRI), Commonwealth Ave., Diliman, 1101 Quezon City (Philippines)
  • 3. Td-Lab Sustainable Mineral Resources, Universität für Weiterbildung Krems, Dr.‑Karl‑Dorrek‑Straße 30, 3500 Krems (Austria)
  • 4. Technische Universität Bergakademie Freiberg, Leipziger Straße 29, Freiberg (Germany)

Description

The Philippines produce some 2.1–3.2 million t phosphogypsum (PG) per year. PG can contain elevated concentrations of rare earth elements (REEs). In this work, the leaching efficiency of the REEs from Philippine PG with H2SO4 was for the first time studied. A total of 18 experimental setups (repeated 3 times each) were conducted to optimize the acid concentration (1–10%), leaching temperature (40–80 °C), leaching time (5–120 min), and solid-to-liquid ratio (1:10–1:2) with the overall goal of maximizing the REE leaching efficiency. Applying different optimizations (Taguchi method, regression analysis and artificial neural network (ANN) analysis), a total REEs leaching efficiency of 71% (La 75%, Ce 72%, Nd 71% and Y 63%) was realized. Our results show the importance of the explanatory variables in the order of acid concentration > temperature > time > solid-to-liquid ratio. Based on the regression models, the REE leaching efficiencies are directly related to the linear combination of acid concentration, temperature, and time. Meanwhile, the ANN recognized the relevance of the solid-to-liquid ratio in the leaching process with an overall R of 0.97379. The proposed ANN model can be used to predict REE leaching efficiencies from PG with reasonable accuracy. (author)

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Material Cycles and Waste Management (Print)
Journal Volume
25
Journal Page Range
p. 3316-3330
ISSN
1438-4957

Optional Information

Notes
98 refs., 6 figs., 8 tabs.; © The Author(s) 2023