Advanced industrial-scale recycling of nickel waste alloys: a driver for circular economy objectives

An eco-friendly electrochemical method of nickel alloy waste leaching was developed for circular economy. The nickel concentration was 72.11 g/L in 100 g/L HCl after 90 A·h, 60 °C and 5 A/dm2 current, while 37.37 g/L nickel was obtained in 100 g/L H₂SO₄ under these conditions. The energy intake was 7.5 kWh/kg Ni; a potential of 60%–70% reduction in the thermal energy need compared with pyrometallurgical routes. The elemental analyses showed favoured dissolution of Ni, Co, Cr and Fe into the solution, while refractory metals gathered in the anodic sludge, comprising 40.33–57.13 wt.% W along with Nb, Hf and Ti oxides. The recycling of nickel was 72.11 g/L, while other metals were 40.33–57.13 wt.% W, 4–5 wt.% Nb and 4–5 wt.% Hf. Briefly, the developed process allowed lumpy alloy waste treatment without grinding and provided an energy-efficient, promising and industrially viable approach for the circular recovery of nickel and precious metals.

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Journal
Journal of Taibah University for Science
Published
2026-09-19
DOI
https://doi.org/10.1080/16583655.2026.2735101
Primary Topic
Extraction and Separation Processes
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article
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article

Advanced industrial-scale recycling of nickel waste alloys: a driver for circular economy objectives

Musa A. Said, Imran Ali, A. L. Shapagin, Tatiana Kon'kova et al.
Journal of Taibah University for Science
Extraction and Separation Processes
article

Advanced industrial-scale recycling of nickel waste alloys: a driver for circular economy objectives

Musa A. Said, Imran Ali, A. L. Shapagin, Tatiana Kon'kova, Gunel Imanova, Nikolay Vetlugin, Anastasiya Gaidukova
article en

Abstract

An eco-friendly electrochemical method of nickel alloy waste leaching was developed for circular economy. The nickel concentration was 72.11 g/L in 100 g/L HCl after 90 A·h, 60 °C and 5 A/dm2 current, while 37.37 g/L nickel was obtained in 100 g/L H₂SO₄ under these conditions. The energy intake was 7.5 kWh/kg Ni; a potential of 60%–70% reduction in the thermal energy need compared with pyrometallurgical routes. The elemental analyses showed favoured dissolution of Ni, Co, Cr and Fe into the solution, while refractory metals gathered in the anodic sludge, comprising 40.33–57.13 wt.% W along with Nb, Hf and Ti oxides. The recycling of nickel was 72.11 g/L, while other metals were 40.33–57.13 wt.% W, 4–5 wt.% Nb and 4–5 wt.% Hf. Briefly, the developed process allowed lumpy alloy waste treatment without grinding and provided an energy-efficient, promising and industrially viable approach for the circular recovery of nickel and precious metals.

Journal of Taibah University for ScienceVol. 20(1)
Khazar University (AZ), D. Mendeleyev University of Chemical Technology of Russia (RU), Frumkin Institute of Physical Chemistry and Electrochemistry (RU), Ministry of Science and Education Republic of Azerbaijan (AZ), Azerbaijan University of Architecture and Construction (AZ), Solar System Exploration Research Virtual Institute (US), Islamic University of Madinah (SA), Jamia Millia Islamia (IN)
Openalex Percentile: Top 20%
Extraction and Separation Processes
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Advanced industrial-scale recycling of nickel waste alloys: a driver for circular economy objectives — Musa A. Said, Imran Ali, et al. · Journal of Taibah University for Science (2026) | TGRS Research Map | TGRS