Changqing Li , Tao Jiang , Jing Wen , Tangxia Yu , Feifei Li
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引用次数: 0
Abstract
Vanadium is a strategic metal with extensive applications in steel production and emerging energy technologies. In vanadium metallurgy, the pivotal steps encompass the roasting of vanadium slag, leaching, and precipitation of vanadium. The roasting process, which involves elements such as sodium, calcium, manganese, and magnesium, facilitates the phase transformation and extraction of vanadium. Considering the phase separation behavior of vanadium-enriched phases (MV2O6, MV2O7, or MV2O8) in various leaching media, including acid, alkali, and water, the wet decomposition of these phases can be classified into two categories: (i) those yielding insoluble M and soluble V and (ii) those resulting in both soluble M and V. Thermodynamically, the reaction equilibrium constants and temperature profiles of the vanadium-rich phases in various acid and alkaline decomposition processes were calculated and juxtaposed. This review also reports the limiting factors of leaching kinetics of vanadium-rich phases in acid and alkaline decomposition processes, particularly the separation and transformation of vanadium-rich phases in calcified vanadium slag. The vanadium precipitation process encompasses a detailed elaboration of the mechanisms behind the precipitation of hydrolyzed vanadium product and ammonium‑vanadium product. Finally, the vanadium slag roasting-leaching‑vanadium precipitation process was evaluated from four aspects: principle, laboratory and plant practice, resource and environment, and cost and benefit.
钒是一种战略金属,广泛应用于钢铁生产和新兴能源技术。钒冶金的关键步骤包括钒渣焙烧、浸出和钒沉淀。焙烧过程涉及钠、钙、锰和镁等元素,有利于钒的相变和提取。考虑到富钒相(MVO、MVO 或 MVO)在各种浸出介质(包括酸、碱和水)中的相分离行为,这些相的湿分解可分为两类:(i) 产生不溶性 M 和可溶性 V 的相,以及 (ii) 同时产生可溶性 M 和 V 的相。本综述还报告了酸性和碱性分解过程中富钒相浸出动力学的限制因素,特别是钙化钒渣中富钒相的分离和转化。钒沉淀过程详细阐述了水解钒产物和铵钒产物的沉淀机理。最后,从原理、实验室和工厂实践、资源和环境、成本和效益四个方面对钒渣焙烧-浸出-钒沉淀工艺进行了评估。
期刊介绍:
Hydrometallurgy aims to compile studies on novel processes, process design, chemistry, modelling, control, economics and interfaces between unit operations, and to provide a forum for discussions on case histories and operational difficulties.
Topics covered include: leaching of metal values by chemical reagents or bacterial action at ambient or elevated pressures and temperatures; separation of solids from leach liquors; removal of impurities and recovery of metal values by precipitation, ion exchange, solvent extraction, gaseous reduction, cementation, electro-winning and electro-refining; pre-treatment of ores by roasting or chemical treatments such as halogenation or reduction; recycling of reagents and treatment of effluents.