于大伟

教授 博士生导师 硕士生导师

入职时间:2018-08-27

所在单位:冶金与环境学院

职务:Professor

学历:博士研究生毕业

办公地点:中南大学资源循环研究院资源楼201室

性别:男

联系方式:电子邮箱:dawei.yu@csu.edu.cn 电话:0731-88876255

学位:博士学位

在职信息:在职

主要任职:中国有色金属工业清洁冶金工程研究中心主任

其他任职:中南大学资源循环研究院副院长

毕业院校:多伦多大学

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Molten salt electrolysis of spent nickel-based superalloys with liquid cathode for the selective separation of nickel

发布时间:2022-12-10

点击次数:

DOI码:10.1016/j.seppur.2022.122168

发表刊物:Separation and Purification Technology

摘要:Bearing significant concentrations of high value and critical metals, superalloy scraps are recycled to alleviate the current resource shortage. This paper presents a novel method of molten salt electrolysis coupled with a liquid cathode (Cd) for the selective nickel extraction from nickel-based superalloys. The method was inspired by the high corrosion resistance of superalloys, which makes recovery challenging, and the poor selectivity of existing nickel extraction methods. Electrochemical analysis was performed by cyclic voltammetry and linear voltammetry. Results indicated that Cr, Fe, and Ni were oxidized sequentially in the superalloy during electrolysis. The effect of electrolytic temperature and duration on the dissolution rate of the anode as well as the cathode composition were investigated. After electrolysis at an optimal temperature of 650 °C, SEM-EDS and XRD results revealed that the surface of the superalloy became porous, and nickel existed as NiF2 in the molten salt or as Cd-Ni liquid alloy in the cathode. Other superalloy elements, such as iron and chromium, existed in the electrolyte as alloy particles or fluorinated salts and were not detected in the liquid cathode. Therefore, the proposed method of molten salt electrolysis coupled with liquid cathode exhibited excellent selectivity toward Ni extraction from superalloy scraps.

论文类型:期刊论文

卷号:302

页面范围:122168

是否译文:

发表时间:2022-12-06

收录刊物:SCI

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