Molybdates Formation Pathways and Their Roles on Thermal Oxidation of Molybdenite Concentrates
摘要
The mainstream oxidative roasting method is facing challenges in processing low-grade molybdenite (MoS2) concentrates, calling for deep understandings toward the behaviors of impurities. This study took pure minerals and reagents as the objects and conducted elaborate experiments and theoretical calculations into the formations of molybdates and their influences on MoS2 oxidation. The emphasis are on the reactions under local O2-absent conditions and the sintering of MoS2 caused by molybdates of Ca, Fe, Cu, or Pb. It was found that molybdates could directly form from MoO2 or MoS2 without O2 at 600 °C to 650 °C, due to the promotion of reactivity and reducibility of MoO2 when combining with impurity metals. The produced molybdates would lower the melting point, dissolve in liquid MoO3, and migrate to oxidation interface to form a sintering layer that inhibits O2 diffusion. Overall, this study has discovered new pathways of molybdates formation and new effects of segregation on the sintering and established evolution patterns of bulk MoS2 concentrate during roasting, which may be significant complements to the fundamentals of classical molybdenum metallurgy.