Understanding the mobility and retention of uranium and its daughter products
- 1. School of Earth, Atmosphere and Environment, 9 Rainforest Walk, Monash University, Clayton, VIC 3168 (Australia)
- 2. Institute for Photonics and Advanced Sensing and School of Physical Sciences, University of Adelaide, Adelaide, SA (Australia)
- 3. School of Civil, Environmental and Mining Engineering, The University of Adelaide, SA 5005 (Australia)
- 4. BHP Olympic Dam, Adelaide, SA 5000 (Australia)
Description
Highlights: • U breakdown and release in complex processing circuits. • Mobility of U-decay chain daughter radionuclides. • Subsequent sorption and retention of radionuclides. • Fractionation and severe upgrade of radionuclide content. Knowledge of the behavior of technologically enhanced naturally occurring radioactive materials derived through the decay of U and its daughter products, and their subsequent fractionation, mobilization and retention, is essential to develop effective mitigation strategies and long-term radiological risk prediction. In the present study, multiple state-of-the-art, spatially resolved micro-analytical characterization techniques were combined to systematically track the liberation and migration of radionuclides (RN) from U-bearing phases in an Olympic Dam Cu flotation concentrate following sulfuric-acid-leach processing. The results highlighted the progressive dissolution of U-bearing minerals (mainly uraninite) leading to the release, disequilibrium and ultimately upgrade of daughter RN from the parent U. This occurred in conjunction with primary Cu-Fe-sulfide minerals undergoing coupled-dissolution reprecipitation to the porous secondary Cu-mineral, covellite. The budget of RN remaining in the leached concentrate was split between RN still hosted in the original U-bearing minerals, and RN that were mobilized and subsequently sorbed/precipitated onto porous covellite and auxiliary gangue mineral phases (e.g. barite). Further grinding of the flotation concentrate prior to sulfuric-acid-leach led to dissolution of U-bearing minerals previously encapsulated within Cu-Fe-sulfide minerals, resulting in increased release and disequilibrium of daughter RN, and causing further RN upgrade. The various processes that affect RN (mobility, sorption, precipitation) and sulfide minerals (coupled-dissolution reprecipitation and associated porosity generation) occur continuously within the hydrometallurgical circuit, and their interplay controls the rapid and highly localized enrichment of RN. The innovative combination of tools developed here reveal the heterogeneous distribution and fractionation of the RN in the ores following hydrometallurgical treatment at nm to cm-scales in exquisite detail. This approach provides an effective blueprint for understanding of the mobility and retention of U and its daughter products in complex anthropogenic and natural processes in the mining and energy industries.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.jhazmat.2020.124553Additional details
Identifiers
- DOI
- 10.1016/j.jhazmat.2020.124553;
- PII
- S0304389420325437;
Publishing Information
- Journal Title
- Journal of Hazardous Materials
- Journal Volume
- 410
- Journal Page Range
- vp.
- ISSN
- 0304-3894
- CODEN
- JHMAD9
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54029260
- Subject category
- S07: ISOTOPES AND RADIATION SOURCES; S36: MATERIALS SCIENCE; S12: MANAGEMENT OF RADIOACTIVE WASTES, AND NON-RADIOACTIVE WASTES FROM NUCLEAR FACILITIES;
- Descriptors DEI
- BARITE; DAUGHTER PRODUCTS; FRACTIONATION; NATURALLY OCCURRING RADIOACTIVE MATERIALS; NUCLEAR DECAY; POROUS MATERIALS; PRECIPITATION; PYRAZOLINES; RADIOISOTOPES; SULFIDE MINERALS; URANINITES; URANIUM
- Descriptors DEC
- ACTINIDES; AZOLES; DECAY; ELEMENTS; HETEROCYCLIC COMPOUNDS; ISOTOPES; MATERIALS; METALS; MINERALS; ORGANIC COMPOUNDS; ORGANIC NITROGEN COMPOUNDS; OXIDE MINERALS; PYRAZOLES; RADIOACTIVE MATERIALS; RADIOACTIVE MINERALS; SEPARATION PROCESSES; SULFATE MINERALS; URANIUM MINERALS
Optional Information
- Copyright
- Copyright (c) 2020 Elsevier B.V. All rights reserved.