湿法冶炼低品位电子垃圾回收铜的研究

Q2 Materials Science Minerals & Metallurgical Processing Pub Date : 2017-02-01 DOI:10.19150/MMP.7245
E. Rudnik, N. Dashbold
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引用次数: 8

摘要

废弃电气和电子设备目前是世界上增长最快的废物流,但与此同时,它被视为回收工业的重要金属来源。电子废物通常采用高温冶金法处理,少量采用湿法冶金法。本文报道了从低价值电子废弃物中选择性回收铜的研究结果。废钢的火法冶金预处理可以去除塑料并增加材料中的金属含量。所制得的铜、锌、锡、银合金是由两铜相和富含铁、铅、银的夹杂物组成的多相固体。将铜合金进一步阳极溶解在氨氯溶液中。这导致了材料的高度降解和金属主要在泥中的积累。然后在酸性或氨氯化物和硫酸盐溶液中浸出泥,然后进行选择性电积铜。盐酸是污泥中最有效的溶剂,但氨溶液对铜的选择性更强。氯化物溶液和硫酸盐溶液对铜的浸出效率分别为96% ~ 100%和87%。从酸溶液中得到纯度为90%至99%、电流效率为42%至76%的铜,而从氨浴中得到纯度为98%至99%、电流效率为60%至86%的铜。
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Study on copper recovery from smelted low-grade e-scrap using hydrometallurgical methods
Waste electric and electronic equipment currently comprises the fastest-growing waste stream in the world, but at the same time it is seen as an important source of metals for the recycling industry. E-waste is usually treated pyrometallurgically, with hydrometallurgical methods used to a lesser extent. This paper reports the results of research on the selective recovery of copper from smelted low-value electronic waste. Pyrometallurgical pretreatment of the scrap allowed the removal of plastics and the increase of metal content in the material. The obtained alloy of copper, zinc, tin and silver was a multiphase solid consisting of two brass phases and inclusions rich in iron, lead and silver. Copper alloy was further anodically dissolved in ammoniacal chloride solution. It resulted in high degradation of the material and accumulation of the metals mainly in the slime. The slime was then leached in acid or ammoniacal chloride and sulfate solutions followed by selective copper electrowinning. Hydrochloric acid was the most efficient solvent for the slime, but ammoniacal solutions were more selective for copper. Copper could be leached with 96 to 100 percent and 87 percent efficiency from the slime by the chloride and sulfate solutions, respectively. Copper with 90 to 99 percent purity at current efficiency of 42 to 76 percent was obtained from the acid solutions, while copper with 98 to 99 percent purity at current efficiency of 60 to 86 percent was deposited from the ammoniacal baths.
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来源期刊
Minerals & Metallurgical Processing
Minerals & Metallurgical Processing 工程技术-矿业与矿物加工
CiteScore
0.84
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: For over twenty-five years, M&MP has been your source for the newest thinking in the processing of minerals and metals. We cover the latest developments in a wide range of applicable disciplines, from metallurgy to computer science to environmental engineering. Our authors, experts from industry, academia and the government, present state-of-the-art research from around the globe.
期刊最新文献
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