Tang Xiaowei, He Yuehui
Powder Metallurgy Research Institute, Central South University, Changsha, China.
State Key Laboratory of Powder Metallurgy, Central South University, Changsha, China.
Front Chem. 2023 Dec 7;11:1290831. doi: 10.3389/fchem.2023.1290831. eCollection 2023.
Niccolite, a rare nickel arsenide mineral, has emerged as a promising source for nickel extraction. However, its processing is limited and often associated with toxicity concerns. This study aims to search for efficient separation of arsenic during the roasting process of niccolite. The arsenic-containing phase was optimized through changing the contents of oxygen, additive S, and additive FeS in the system to achieve efficient separation of arsenic during the roasting process of niccolite. Thermodynamic analysis was performed using the equilibrium composition module with HSC Chemistry. The thermodynamic results showed that in direct roasting, the product contained ferric arsenate which immobilized arsenic in the solid phase, increasing the difficulty in separation. In the presence of sulfur, the arsenic may escape completely in the form of gas (AsO, AsO, AsO). The use of FeS as the reductant significantly reduced the residual arsenic content. The FeS reduction in roasting process is an optimal strategy for arsenic removal from niccolite. This provides a novel technique for nickel extraction in industry.
红砷镍矿是一种稀有的砷化镍矿物,已成为一种有前景的镍提取来源。然而,其加工过程有限,且常常涉及毒性问题。本研究旨在探寻在红砷镍矿焙烧过程中有效分离砷的方法。通过改变体系中氧、添加剂硫和添加剂硫化亚铁的含量,对含砷相进行优化,以在红砷镍矿焙烧过程中实现砷的有效分离。使用HSC Chemistry的平衡组成模块进行了热力学分析。热力学结果表明,直接焙烧时,产物中含有砷酸铁,它将砷固定在固相,增加了分离难度。在有硫存在的情况下,砷可能以气体形式(AsO、AsO、AsO)完全逸出。使用硫化亚铁作为还原剂显著降低了残余砷含量。焙烧过程中硫化亚铁还原是从红砷镍矿中去除砷的最佳策略。这为工业上镍的提取提供了一种新技术。