Development of a Hydrometallurgical Process for the Extraction of Cobalt, Manganese, and Nickel from Acid Mine Drainage Treatment By-Product

Alejandro Agudelo Mira, Qingqing Huang
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Abstract

Critical minerals (CMs) are pivotal in modern industries, such as telecommunications, defense, medicine, and aerospace, contributing significantly to regional and global economic growth. However, the reliance on external sources for 26 out of 50 identified CMs raises concerns about supply chain vulnerabilities. To address this, the research focused on developing a hydrometallurgical process for extracting cobalt, manganese, and nickel from acid mine drainage (AMD) treatment by-products, emphasizing the need to diversify CM supply chains within the United States (US). A solution composed of an REE solvent extraction raffinate loaded with cobalt, manganese, nickel, and various impurity metals was utilized as a feedstock in this study. The developed hydrometallurgical process involved initial sodium hydroxide precipitation to remove impurities like aluminum and iron from an SX raffinate solution generated during the extraction of rare earth elements (REEs). Precipitation stages were performed in a pH region ranging from 2 to 12 to identify the optimum pH values, achieving a tradeoff between recovery and impurity removal. A subsequent precipitation process at pH 5–10 yielded a product rich in CMs, such as manganese, cobalt, and nickel. Further separation steps involved nitric acid washing, resulting in a Mn product with a purity of 47.9% by weight and a solution with extractable concentrations of cobalt and nickel. Stagewise precipitation with sodium sulfide subsequently produced three solid products: cobalt and nickel product at pH 1–5, manganese product at pH 5–10, and magnesium at pH 10–12. The study also explored other separation approaches, including solvent extraction, to enhance the separation of nickel from cobalt. Overall, the developed hydrometallurgical process generated the following products with varying degrees of purities: cobalt (9.92 wt.%), nickel (14 wt.%), manganese (47.9 wt.%), and magnesium (27.49 wt.%). This research aimed to contribute to the sustainable extraction of CMs from secondary sources, reducing the US’ reliance on imports and promoting a more resilient supply chain for these crucial elements.
开发从酸性矿井排水处理副产品中提取钴、锰和镍的湿法冶金工艺
关键矿物(CMs)在电信、国防、医药和航空航天等现代工业中举足轻重,对地区和全球经济增长做出了重大贡献。然而,在已确定的 50 种关键矿物中,有 26 种依赖外部来源,这引起了人们对供应链脆弱性的担忧。为解决这一问题,研究重点是开发一种从酸性矿山排水(AMD)处理副产品中提取钴、锰和镍的湿法冶金工艺,强调在美国国内实现 CM 供应链多样化的必要性。在这项研究中,使用了一种由含有钴、锰、镍和各种杂质金属的 REE 溶剂萃取废液组成的溶液作为原料。所开发的湿法冶金工艺包括氢氧化钠沉淀,以去除稀土元素(REE)萃取过程中产生的 SX 灰渣溶液中的铝和铁等杂质。沉淀阶段在 pH 值为 2 到 12 的范围内进行,以确定最佳 pH 值,从而在回收率和杂质去除率之间取得平衡。随后在 pH 值为 5-10 的沉淀过程中得到了富含 CMs(如锰、钴和镍)的产品。进一步的分离步骤包括硝酸洗涤,得到的锰产品纯度为 47.9%(按重量计),溶液中的钴和镍浓度可提取。随后,用硫化钠分段沉淀产生了三种固体产品:pH 值为 1-5 的钴和镍产品、pH 值为 5-10 的锰产品和 pH 值为 10-12 的镁产品。研究还探索了其他分离方法,包括溶剂萃取,以提高镍和钴的分离效果。总体而言,所开发的湿法冶金工艺产生了纯度不同的以下产品:钴(9.92 重量%)、镍(14 重量%)、锰(47.9 重量%)和镁(27.49 重量%)。这项研究旨在促进从二次资源中可持续地提取 CMs,减少美国对进口的依赖,并促进这些关键元素的供应链更具弹性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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