Stabilities and Transformations of Manganese Incorporated Magnesium–Chromium Spinels
摘要
The rapid advancement in stainless steel manufacturing has resulted in the substantial accumulation of stainless steel slags. In those slags, a significant proportion of trivalent chromium is susceptible to oxidation, forming highly toxic hexavalent chromium, particularly under oxidizing atmosphere. Therefore, prior to landfilling or resource recycling, specialized modification of phase transitions is essential. This study is based on the strategy of converting chromium into spinel structure to achieve detoxification. Initially, the thermodynamic calculations were conducted to analyze the formation and transformation behaviors of spinels in an alkaline environment, with particular emphasis on changes in the valence states of manganese. The synthesis and investigation of typical Mg1−xMnxCr2O4 spinels commonly encountered in stainless steel slags treatment process were subsequently conducted. Through various characterization techniques and leaching tests, it was found that the stability of Mn2+ incorporated MgCr2O4 was diminished. However, with an increase in MnO content from 5 to 20 pct (in mole), the stability of Mg1−xMnxCr2O4 spinels showed an upward trend, though remaining lower than that of pure MgCr2O4. The subsequent introduction of CaO for high-temperature calcination revealed that the disruption of tetrahedral sites in the spinels primarily originates from Mn2+, whereas Mg2+ exhibited a greater stability in occupying tetrahedral sites. A comprehensive understanding of the properties of Mg1−xMnxCr2O4 spinels could contribute to the target modification and application of stainless steel slags.