PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 10, 2026Mineralium Deposita0 citationsOpen Access

Mass balance modelling of cobalt sources in the Tenke-Fungurume copper-cobalt district, Democratic Republic of the Congo

MCMalena Cazorla-MartínezLZLingli ZhouSJSimon Jones

Key Points

  • The aim is to evaluate the sources of cobalt in the Tenke-Fungurume district using mass balance modelling.
  • Developed mass balance models to assess cobalt source rocks and leaching efficiencies.
  • Evaluated scenarios with varying leaching efficiencies and rock compositions to achieve the cobalt budget.
  • Analyzed source rock volume and composition, focusing on ultramafic and Katangan units.
  • Achieved a cobalt budget of 25.1 Mt with model scenarios including 63% lherzolite in basement.
  • Observed that leaching efficiency was crucial for cobalt sourcing with variations between 5% to 23%.
  • Highlighted the importance of ultramafic basement rocks and fluid pathways in cobalt sourcing.

Abstract

Abstract Sedimentary rock-hosted copper-cobalt deposits of the Central African Copperbelt (CACB) supply over 70% of global cobalt production. Cobalt source rocks proposed in the literature include Katangan red beds and mafic igneous rocks, and mafic-ultramafic rocks in the pre-Katangan basement. Given the limited exposure of potential source rocks in cobalt-rich CACB deposits, mass balance modelling is developed to evaluate cobalt sources in the Tenke-Fungurume copper-cobalt district (TFMD), Democratic Republic of the Congo, with an estimated total cobalt budget of 25.1 Mt. Modelled parameters are source rock volume and composition, and cobalt leaching efficiency. Assuming 20% leaching efficiency, the Katangan basal units thickness required to supply the cobalt budget greatly exceeds observed values across the CACB, with over 3,800 m and 1,900 m for red beds and gabbro, respectively. In forward models combining Katangan basal units and pre-Katangan basement, the cobalt budget was achieved by a scenario with basement containing over 63% lherzolite. In this context, ultramafic rocks associated with the NE Kibaran belt extension may occur within the pre-Katangan basement. The cobalt budget was also achieved by increasing basement leaching efficiency from 5% to 23% and to 10% for felsic-intermediate and mafic compositions, respectively. These results and the parameter sensitivity analysis highlight a fundamental control of leaching efficiency on cobalt sourcing. Such efficient leaching may have been driven by hypersaline residual brines, with major structural pathways facilitating fluid flow into the basement. Overall, the modelling underscores the key roles of ultramafic basement rocks and leaching efficiency in effective cobalt sourcing.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Cazorla-Martínez et al. (2026) studied this question.

synapsesocial.com/papers/6a00205ec8f74e3340f9b4c7https://doi.org/10.1007/s00126-026-01454-3
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Recovery of Cobalt from Acid Mine Drainage and Spent-Battery Processing Effluent by Ambient-Temperature Vacuum Phase Separation2026
  2. 2Advancing copper and cobalt exploration in the Kengere East, Kolwezi, Democratic Republic of the Congo: a synergistic approach combining geophysical surveys and metal factor analysis to delineate high-potential mineralization zones2025
  3. 3Uranium in cobalt-hydroxide exports from the Democratic Republic of the Congo2026
  4. 4Integrated Modeling of Cu-Rich Fluid Migration and Mineralization in the Katangan Basin, Central African Copperbelt: Insights from Numerical Experiments2024
  5. 5Cobalt distribution and its relationship with bedrocks and cobalt mineralizations in China2024 · 11 citations