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低溫堿性熔煉分離提取廢棄電路板粉末中兩性金屬

Separation and extraction of amphoteric metals from waste printed circuit board powders by low-temperature alkaline smelting

  • 摘要: 模擬廢棄電路板破碎、分選后得到的多金屬富集粉末,通過單因素實驗和正交試驗,采用低溫堿性熔煉研究熔煉溫度、熔煉時間和鹽料質量比對其中有價金屬分離提取率的影響.結果表明,最佳條件為熔煉溫度400℃,熔煉時間1.5h,鹽料質量比3.5,其中鹽料質量比對兩性金屬提取率影響最顯著.在最佳條件下,兩性金屬提取率為Sn 83.6%、Al 92.7%、Zn 80.9%及Sb 34.5%,以可溶鹽形式富集在浸出液中,銅等其他成分則于渣中富集,有效實現了兩性金屬與其他金屬的分離.

     

    Abstract: Multi-component metal powders were prepared by imitating the crushed metal enrichment originated from waste printed circuit boards. The effects of smelting temperature, smelting time and NaNO3-NaOH/powder mass ratio on the extracting ratios of amphoteric metals during low-temperature alkaline smelting were investigated through single-factor experiments and orthogonal tests. It is found that the mass ratio of NaNO3-NaOH to crushed metal enrichment has the most significant effect on the extracting ratios of amphoteric metals. The optimum conditions were obtained as the smelting temperature of 400℃, the smelting time of 1.5 h and the mass ratio of NaNO3-NaOH to crushed metal enrichment of 3.5. Under the optimum conditions, the extracting ratios of amphoteric metals are as the following:Sn 83.6%, Al 92.7%, Zn 80.9%, and Sb 34.5%. Amphoteric metals are converted to sodium salts, dissolving in the leaching process, while other components, such as copper and precious metals, are enriched in the residue. In this novel process, amphoteric metals are separated with other metals efficiently.

     

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