Study on leaching kinetics of hexavalent chromium from aged calcium-free chromium slag

Исследование кинетики выщелачивания шестивалентного хрома из старого кальций‑свободного хромового шлака
Quan Qi, Liang Li, Liangyu Wei, Baoming Hu, Zheng Liu, Xuqing Liu
2021-08-03

apparent activation energy 11.93 kJ·mol–1calcium-free chromium slaghexavalent chromium leachinginternal diffusion controlleaching kinetics
To provide a scientific basis for the resource utilization of chromium slag, this article studies the release law of hexavalent chromium in the aged calcium-free chromium slag. XRD (X-ray diffractometer) and MLA (Mineral Liberation Analyzer) were used to analyze the composition of the chromium slag; using sulfuric acid-nitric acid as the leaching solution, the release law of hexavalent chromium in chromium slag and the leaching kinetics were studied. The results show that main components of the chromium slag are magnesioferrite, chromite, hematite, hydrargillite, and spinel; chromium is mainly present in chromite and magnesioferrite; the leaching rate of hexavalent chromium increases with the increase of temperature or the decrease of pH. The analysis of leaching kinetics shows the leaching rate is controlled by the internal diffusion reaction, and the apparent activation energy is 11.93 kJ·mol–1. The chromium slag is aged in high temperature seasons, which is conducive to the precipitation of hexavalent chromium in the chromium slag, can increase the yield of chromate in the roasting kiln, and is conducive to resource utilization; chromium slag should be stored in order to prevent acid rain erosion which leads to environmental pollution risk (e.g. drinking water).
1
Aging chromium slag in high-temperature seasons promotes precipitation of hexavalent chromium, increasing chromate yield during roasting and aiding resource utilization.
2
Chromium in the slag is primarily hosted in chromite and magnesioferrite phases.
3
Chromium slag main mineral components are magnesioferrite, chromite, hematite, hydrargillite, and spinel.
4
Chromium slag should be stored to avoid acid rain erosion, which increases environmental pollution risk (e.g., contamination of drinking water).
5
Hexavalent chromium leaching rate increases with higher temperature and with lower pH (more acidic conditions).
6
Leaching kinetics are controlled by an internal diffusion reaction with an apparent activation energy of 11.93 kJ·mol–1.

Aged calcium-free chromium slag

Leaching behavior and kinetics of hexavalent chromium release (including temperature/pH dependence, internal diffusion control, and apparent activation energy)

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2021-08-03
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Authors
Quan Qi
Liang Li
Liangyu Wei
Baoming Hu
Zheng Liu
Xuqing Liu
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