离子交换法分离铜电解液中铁锑
Removal of Iron and Antimony from Copper Electrolytes Using the Ion Exchange Method
DOI: 10.12677/MEng.2016.33016, PDF, HTML, XML, 下载: 1,601  浏览: 5,041 
作者: 文 燕:铜陵有色金属集团控股有限公司,安徽 铜陵
关键词: 铜电解液离子交换盐酸Copper Electrolytes Ion Exchange Iron Antimony Hydrochloric Acid
摘要: 本文采用离子交换树脂分离铜电解液中铁和锑进行了实验室扩大试验研究。研究结果表明:离子交换树脂可以吸附铜电解液中50%左右的铁和99%以上的锑。经30个床体的吸附,吸附后液中的锑含量均在20 mg/L以下,采用6 M HCl脱附剂可有效地将铁和锑洗脱。该离子交换树脂也吸附一定量的铋、镍离子,用6 M HCl可将树脂所吸附的铋和镍等离子完全脱附下来。经多次循环吸附–脱附试验表明,其稳定性良好。
Abstract: A lab-scale enlarging experiment on removal of iron and antimony from copper electrolytes by the ion exchange method was studied. The results show that 50% of the iron and more than 99% of the antimony are adsorbed by the ion exchange resin. After 30 bed volumes adsorption, the content of antimony in solution is less than 20 mg/L. And the adsorbed iron and antimony can be thoroughly desorbed by using 6 M HCl solution. This ion exchange resin can also adsorb some bismuth ions and nickel ions, which can be thoroughly desorbed with 6 M HCl solution. Circulation tests indicate that this method has excellent adsorption-desorption stability.
文章引用:文燕. 离子交换法分离铜电解液中铁锑[J]. 冶金工程, 2016, 3(3): 107-112. http://dx.doi.org/10.12677/MEng.2016.33016

参考文献

[1] 姚素平. 诱导法脱砷技术在铜电解液净化系统中的应用[J]. 有色金属(冶炼部分), 1996(1): 11-16.
[2] 王文学, 肖炳瑞, 张帆. 铜电解液碳酸钡脱铋锌工艺[J]. 中国有色金属学报, 2006, 16(7): 1296-1299.
[3] 陈永康. 铜电解液还原净化脱砷工艺研究[J]. 有色金属(冶炼部分), 1998 (1): 8-12.
[4] 李坚, 段一新, 彭大龙. 用溶剂萃取除去铜电解液中砷的研究[J]. 有色矿冶, 1998(2): 32-37.
[5] 何万年, 何思郝. 净化铜电解液中杂质的方法[J]. 江西有色金属, 1996, 10(1): 38-43.
[6] 何万年, 赵旺盛, 何思郝. 交换吸附法净化铜电解液中的锑和铋研究[J]. 有色金属(冶炼部分), 1998(6): 26-28.
[7] 何万年, 林蟠文, 何思郝. 离子交换法清除铜电解液中的杂质[J]. 有色金属(冶炼部分), 1996(10):5-10.
[8] McKevitt, B. and Dreisinger, D. (2009) A Compar-ison of Various Ion Exchange Resins for the Removal of Ferric Ions from Copper Electro Winning Electrolyte Solutions Part II: Electrolytes Containing Antimony and Bismuth. Hydrometallurgy, 98, 122-127.
http://dx.doi.org/10.1016/j.hydromet.2009.04.007
[9] Riveros, P.A. (2010) The Removal of Antimony from Copper Electro-lytes Using Amino-Phosphonic Resins: Improving the Elution of Pentavalent Antimony. Hydrometallurgy, 105, 110-114.
http://dx.doi.org/10.1016/j.hydromet.2010.08.008
[10] Xue, S.S., Gulta, M.J., Harvey, J.T. and Horwitz, E.P. (2001) Control of Iron in Copper Electrolyte Streams with a New Monophosphonic/Sulphonic Acid Resin. Minerals & Metallurgical Processing, 18, 133-137.