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一种有效利用铜冶炼渣的方法:在高温下分离有色金属和还原氧化铁。

An efficient approach to utilize copper smelting slag: Separating nonferrous metals and reducing iron oxide at high temperature.

机构信息

School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243032, Anhui, PR China.

School of Metallurgical Engineering, Anhui University of Technology, Maanshan 243032, Anhui, PR China.

出版信息

Waste Manag. 2023 Dec 1;172:182-191. doi: 10.1016/j.wasman.2023.10.017. Epub 2023 Nov 2.

Abstract

Over 50 million tons of copper slag are produced worldwide annually. Stacking is currently the primary method used to treat copper slag, resulting in resource wastage and environmental issues. Using slag as a raw material in the steel industry is areasonablesolution. However, the presence of nonferrous metals degrades steel performance and corrodes smelting equipment, and the remaining slag poses environmental and sustainable challenges. Thus, this study focused on removal of nonferrous metals from copper slag and subsequent reduction of iron oxide. The experimental results showed that increasing the percentage of the chlorinating agent (calcium chloride), temperature, and duration, the removal percentage of copper initially increased linearly, then plateaued. The acidity coefficient had a marginal effect on copper removal percentage. The optimum chlorination roasting conditions were 13 % calcium chloride, 1373 K, and 0.5 h, resulting in removal percentages of 90.3 %, 81.9 %, and 82.7 % for copper, zinc, and lead, respectively. The appropriate oxygen partial pressure for chlorination roasting was 10-0.7 atm. The reduction percentage of iron oxide was approximately 82 % under roasting conditions of 1.5 h at 1373 K. Based on these results, a novel scheme for copper slag utilization is proposed that involves chlorination roasting for nonferrous metal removal, reduction roasting for iron oxide reduction, and melting to obtain molten iron and separate molten slag. The iron and slag are used for steel manufacturing and rock wool preparation, respectively. This scheme provides apromisingway to efficiently use copper slag, which will reduce primary resource consumption and pollution.

摘要

每年全球产生超过 5000 万吨铜渣。目前,堆积是处理铜渣的主要方法,导致资源浪费和环境问题。将渣作为钢铁工业的原料是一种合理的解决方案。然而,有色金属的存在会降低钢的性能并腐蚀冶炼设备,而剩余的渣则带来环境和可持续性挑战。因此,本研究侧重于从铜渣中去除有色金属,然后还原氧化铁。实验结果表明,随着氯化剂(氯化钙)、温度和时间的百分比增加,铜的去除率最初呈线性增加,然后趋于平稳。酸度系数对铜去除率的影响较小。最佳氯化焙烧条件为 13%氯化钙、1373K 和 0.5 小时,分别得到铜、锌和铅的去除率为 90.3%、81.9%和 82.7%。氯化焙烧的适宜氧分压为 10-0.7atm。在 1373K 下,1.5 小时的还原焙烧条件下,氧化铁的还原率约为 82%。基于这些结果,提出了一种利用铜渣的新方案,该方案涉及通过氯化焙烧去除有色金属、还原焙烧去除氧化铁,以及通过熔化获得液态铁和分离液态渣。铁和渣分别用于钢铁制造和岩棉制备。该方案为有效利用铜渣提供了一种有前途的方法,这将减少主要资源消耗和污染。

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