An eco-friendly and low-cost approach for separation and recycling of Mo and Cu from molybdenite purification wastewater

被引:0
作者
Khalife, Hadi [1 ]
Rezaei, Milad [1 ]
机构
[1] Amirkabir Univ Technol, Dept Mat & Met Engn, Tehran Polytech, Hafez Ave,POB 15875-4413, Tehran, Iran
关键词
Recovery; Dried wastewater; Leaching; Precipitation; Electrowinning; Chloride removal; COPPER; EXTRACTION; CONCENTRATE; RECOVERY; KINETICS; VANADIUM; SULFIDE;
D O I
10.1016/j.mineng.2024.108614
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The wastewater resulting from the treatment of molybdenite concentrate contains iron, copper, molybdenum, and significant quantities of ammonium chloride. This research aims to recover copper (Cu) and molybdenum (Mo) from the naturally dried wastewater using calcination, leaching, precipitation, and electrowinning processes. TGA/DTG analysis indicated that significant amounts of ammonia and chloride in the dried wastewater could be removed when heated to a temperature exceeding 300 C-degrees. The alkaline leaching was employed to remove the Mo from the calcined dried wastewater. Alongside the NaOH as a primary leachant, H2O2, and Na2CO3 additives were also used. These additives enhanced the effectiveness of Mo leaching and facilitated the complete separation of Mo from Cu in the dried wastewater. Approximately 99 % of the Mo was extracted from the calcined dried wastewater, with no dissolution of copper in the leaching solution. The most optimal conditions for leaching Mo were attained at a temperature of 80 C-degrees, a duration of 2 h, a NaOH concentration of 2 M, an L/S ratio of 15, and a Na2CO3 concentration of 0.5 M. More than 96 % of Mo was precipitated as molybdenum trisulfide when Na2S was added to leach liquor (after solution acidifying). Then the leach residue was dissolved in 20 vol% sulfuric acid. After iron and chloride ions removal, using 316 stainless steel cathode, lead-calcium anode, and a current density of 250 A/m(2) at 45(degrees) C, copper cathode with a purity of 99.98 % was obtained with 91 % cathodic current efficiency.
引用
收藏
页数:8
相关论文
共 27 条
[1]   Separation of Re and Mo from roasting-dust leach-liquor using solvent extraction technique by TBP [J].
Alamdari, E. Keshavarz ;
Darvishi, D. ;
Haghshenas, D. F. ;
Yousefi, N. ;
Sadrnezhaad, S. K. .
SEPARATION AND PURIFICATION TECHNOLOGY, 2012, 86 :143-148
[2]   Recovery of molybdenum, cobalt and nickel from spent hydrodesulphurization catalyst through oxidizing roast followed by sodium persulfate leaching [J].
Arslanoglu, Hasan ;
Yaras, Ali .
SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2021, 28
[3]   Reaction of ammonium chloride with the copper(II) sulfide and oxide, and identification of the reaction products [J].
Borisov, V. A. ;
D'yachenko, A. N. ;
Kraidenko, R. I. .
RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 2011, 81 (07) :1430-1433
[4]   A novel technology for molybdenum extraction from molybdenite concentrate [J].
Cao, Zhan-fang ;
Zhong, Hong ;
Qiu, Zhao-hui ;
Liu, Guang-yi ;
Zhang, Wen-xuan .
HYDROMETALLURGY, 2009, 99 (1-2) :2-6
[5]   Selective Leaching of Molybdenum from Bulk Concentrate by Electro-Oxidation [J].
Chung, Kyeong Woo ;
Yoon, Ho-Sung ;
Kim, Chul-Joo ;
Jeon, Ho-Seok .
METALS, 2021, 11 (12)
[6]   REVIEW OF MOLYBDENUM RECOVERY PROCESSES [J].
DORFLER, RR ;
LAFERTY, JM .
JOURNAL OF METALS, 1981, 33 (05) :48-54
[7]   Roasting oxidation behaviors of ReS2 and MoS2 in powdery rhenium-bearing, low-grade molybdenum concentrate [J].
Fan, Xiao-hui ;
Deng, Qiong ;
Gan, Min ;
Chen, Xu-ling .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2019, 29 (04) :840-848
[8]  
Gerhardt NI, 2000, HYDROMETALLURGY, V55, P1
[9]  
Gupta C.K., 1992, Extractive Metallurgy of Molybdenum
[10]   Acid recovery from molybdenum metallurgical wastewater via selective electrodialysis and nanofiltration [J].
Hussain, Arif ;
Yan, Haiyang ;
Ul Afsar, Noor ;
Wang, Huangying ;
Yan, Junying ;
Jiang, Chenxiao ;
Wang, Yaoming ;
Xu, Tongwen .
SEPARATION AND PURIFICATION TECHNOLOGY, 2022, 295