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A Cleaner Process for Selective Recovery of Valuable Metals from Electronic Waste of Complex Mixtures of End-of-Life Electronic Products

机译:一种从报废电子产品复杂混合物的电子废物中选择性回收有价金属的清洁工艺

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摘要

In recent years, recovery of metals from electronic waste within the European Union has become increasingly important due to potential supply risk of strategic raw material and environmental concerns. Electronic waste, especially a mixture of end-of-life electronic products from a variety of sources, is of inherently high complexity in composition, phase, and physiochemical properties. In this research, a closed-loop hydrometallurgical process was developed to recover valuable metals, i.e., copper and precious metals, from an industrially processed information and communication technology waste. A two-stage leaching design of this process was adopted in order to selectively extract copper and enrich precious metals. It was found that the recovery efficiency and extraction selectivity of copper both reached more than 95% by using ammonia-based leaching solutions. A new electrodeposition process has been proven feasible with 90% current efficiency during copper recovery, and the copper purity can reach 99.8 wt %. The residue from the first-stage leaching was screened into coarse and fine fractions. The coarse fraction was returned to be releached for further copper recovery. The fine fraction was treated in the second-stage leaching using sulfuric acid to further concentrate precious metals, which could achieve a 100% increase in their concentrations in the residue with negligible loss into the leaching solution. By a combination of different leaching steps and proper physical separation of light materials, this process can achieve closed-loop recycling of the waste with significant efficiency.
机译:近年来,由于战略原材料的潜在供应风险和环境问题,从欧盟范围内的电子废物中回收金属已变得越来越重要。电子废物,尤其是来自各种来源的报废电子产品的混合物,在组成,相和物理化学特性方面具有固有的高复杂性。在这项研究中,开发了一种闭环湿法冶金工艺,以从工业加工的信息和通信技术废物中回收有价值的金属,即铜和贵金属。为了选择性地提取铜并富集贵金属,采用了该工艺的两阶段浸出设计。发现通过使用基于氨的浸出溶液,铜的回收效率和萃取选择性均达到了95%以上。一种新的电沉积工艺已被证明是可行的,在铜回收过程中电流效率为90%,铜纯度可达到99.8 wt%。将第一阶段浸出的残留物筛分为粗级和细级。返回粗级分,以进行进一步的铜回收。在第二阶段的浸出过程中,使用硫酸对细小部分进行处理,以进一步浓缩贵金属,这可以使残留物中的金属浓度增加100%,而在浸出溶液中的损失可忽略不计。通过将不同的浸出步骤和轻质材料进行适当的物理分离相结合,该过程可以实现废物的闭环回收,效率很高。

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  • 来源
    《Environmental Science & Technology》 |2015年第13期|7981-7988|共8页
  • 作者单位

    Department of Materials Science and Engineering, Delft University of Technology, 2628 CD Delft, The Netherlands;

    Ironmaking Department, R&D, Tata Steel, 1970 CA IJmuiden, The Netherlands;

    Department of Materials Science and Engineering, Delft University of Technology, 2628 CD Delft, The Netherlands;

    Business Development, Van Gansewinkel Groep BV, 5657 DH Eindhoven, The Netherlands;

    Department of Materials Science and Engineering, Delft University of Technology, 2628 CD Delft, The Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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