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Copper sulfide precipitation in acidic cobalt solutions Aggreg 2026 Hydrome

Sanduni Jayasekara, Teemu Kinnarinen

2026encopper sulfideprecipitationparticle aggregationhydrometallurgywastewater treatmentsolid-liquid separation

Abstract

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Understanding the time-dependent evolution of particle size and aggregate structure remains crucial for selecting appropriate solid-liquid separation equipment and improving the separation efficiency. Literature currently lacks a comprehensive multi-method analysis of particle dynamics in complex, highly acidic multi-metal systems. This study addresses this gap by presenting a novel integrated characteristic analysis of metal sulfide precipitates generated during copper impurity removal from a highly acidic, cobalt-processing solution. Laser diffraction, optical microscopy with Fiji-based image analysis, automated image analysis, surface area measurements, and fractal analysis were integrated to capture complementary aspects of particle size, morphology, structure, and fragility. Rapid and preferential copper removal ( > 99%) was achieved within minutes, while the liquid phase was dominated by dissolved cobalt. Mineralogical characterization confirmed the formation of poorly crystalline copper-rich metal sulfide phases, dominated by covellite (CuS) with contributions from carrollite (Co2CuS4). All particle sizing methods revealed a consistent trend: particle size increased up to the one-hour mark, followed by a subsequent decrease, indicating a transition from rapid aggregation to structural restructuring. Laser diffraction consistently revealed the smallest median aggregate sizes compared to image-based methods, reflecting hydrodynamic shear effects on fragile aggregates. This discrepancy was quantified using a relative discrepancy (RD) metric, which revealed up to a 70% size reduction under shear. Fractal analysis further quantified aggregate structural complexity and linked densification, restructuring, and weakening to measurement-dependent discrepancies. The integrated framework developed provides a robust basis for quantifying aggregate stability in metal sulfide precipitation systems and offers practical insights relevant to industrial solid-liquid separation.

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Cite This Work

@article{1616989e-a04c-4058-b31d-93007d622a96,
  title={Copper sulfide precipitation in acidic cobalt solutions  Aggreg 2026 Hydrome},
  author={Sanduni Jayasekara and Teemu Kinnarinen},
  year={2026},
  language={en}
}
TY  - JOUR
TI  - Copper sulfide precipitation in acidic cobalt solutions  Aggreg 2026 Hydrome
AU  - Sanduni Jayasekara
AU  - Teemu Kinnarinen
PY  - 2026
LA  - en
ER  -

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