Abstract
Uranium-bearing mining wastewaters often contain bicarbonate, calcium, and magnesium, which complicate rapid treatment by stabilizing aqueous uranyl complexes and altering precipitation pathways. This study evaluated nucleation-induced crystallization (NICP) as a continuous-flow process for uranium removal from three real mining wastewaters with distinct Ca/Mg compositions. Under optimized NaOH dosing, uranium removal exceeded 97.7% at a hydraulic retention time of 6 min, while continuous operation over 100 h remained stable and uranium leaching from pelletized products stayed below 5 μg·L−1. In contrast, carbonate-dominated conditions suppressed uranium removal to below 22% despite effective Ca precipitation. Speciation analysis indicated that hydroxide-rich conditions shifted U(VI) toward UO2(OH)3−, which was more readily transferred to growing Ca/Mg-bearing solids, whereas carbonate-rich conditions stabilized soluble UO2(CO3)34− and hindered solid-phase transfer. Magnesium further improved process performance and product stability by promoting uranium capture and reducing uranium release from the separated pellets. These results show that NICP is a rapid and robust treatment option for carbonate-rich uranium-bearing mining wastewaters.
| Original language | English |
|---|---|
| Article number | 110198 |
| Journal | Journal of Water Process Engineering |
| Volume | 89 |
| DOIs | |
| State | Published - Jul 2026 |
| Externally published | Yes |
Keywords
- Magnesium
- Mining wastewater
- Nucleation-induced crystallization
- Product stability
- Uranium removal
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