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首页> 外文期刊>Journal of Hazardous Materials >Selective leaching of copper and zinc from primary ores and secondary mineral residues using biogenic ammonia
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Selective leaching of copper and zinc from primary ores and secondary mineral residues using biogenic ammonia

机译:使用生物氨和二次矿物残留物的铜和锌的选择性浸出

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摘要

With the number of easily accessible ores depleting, alternate primary and secondary sources are required to meet the increasing demand of economically important metals. Whilst highly abundant, these materials are of lower grade with respect to traditional ores, thus highly selective and sustainable metal extraction technologies are needed to reduce processing costs. Here, we investigated the metal leaching potential of biogenic ammonia produced by a ureolytic strain of Lysinibacillus sphaericus on eight primary and secondary materials, comprised of mining and metallurgical residues, sludges and automotive shredder residues (ASR). For the majority of materials, moderate to high yields (30-70%) and very high selectivity (97% against iron) of copper and zinc were obtained with 1 mol L-1 total ammonia. Optimal leaching was achieved and further refined for the ASR in a twostep indirect leaching system with biogenic ammonia. Copper leaching was the result of local corrosion and differences in leaching against the synthetic (NH4)(2)CO3 control could be accounted for by pH shifts from microbial metabolism, subsequently altering free NH3 required for coordination. These results provide important findings for future sustainable metal recovery technologies from secondary materials.
机译:随着易于访问的易于耗尽的数量,需要替代的主要和二级来源来满足经济上重要金属的不断增长。在高度丰厚的同时,这些材料相对于传统矿石等级较低,因此需要高度选择性和可持续的金属提取技术来降低加工成本。在这里,我们研究了通过溶酶菌株在八个初级和二级材料中产生的催氨酸菌株产生的生物氨的金属浸出潜力,包括采矿和冶金残留物,污泥和汽车粉碎器残留物(ASR)。对于大多数材料,通过1mol L-1总氨获得,中等至高收率(30-70%)和非常高的选择性(> 97%抵抗铁)的铜和锌)。实现了最佳浸出,并进一步改进了滴落间间接浸出系统的ASR,其具有生物氨。铜浸出是局部腐蚀的结果,并且通过从微生物代谢的pH转移来占合成(NH4)(2)CO3对照的局部腐蚀的结果,随后改变协调所需的NH 3。这些结果为来自二级材料的未来可持续金属恢复技术提供了重要调查结果。

著录项

  • 来源
    《Journal of Hazardous Materials》 |2021年第2期|123842.1-123842.10|共10页
  • 作者单位

    Univ Ghent Fac Biosci Engn Ctr Microbial Ecol & Technol Coupure Links 653 B-9000 Ghent Belgium|SIM Vzw Technol Pk 935 B-9052 Zwijnaarde Belgium;

    Univ Ghent Fac Biosci Engn Ctr Microbial Ecol & Technol Coupure Links 653 B-9000 Ghent Belgium;

    Univ Ghent Fac Biosci Engn Ctr Microbial Ecol & Technol Coupure Links 653 B-9000 Ghent Belgium;

    VITO Nv Flemish Inst Technol Res Waste Recycling Technol Boerentang 200 B-2400 Mol Belgium;

    VITO Nv Flemish Inst Technol Res Waste Recycling Technol Boerentang 200 B-2400 Mol Belgium;

    TECNALIA Energy & Environm Div Mikeletegi Pasealekua 2 E-20009 Donostia San Sebastian Gipuzkoa Spain;

    Univ Ghent Fac Biosci Engn Dept Green Chem & Technol Coupure Links 653 B-9000 Ghent Belgium;

    Univ Ghent Fac Biosci Engn Ctr Microbial Ecol & Technol Coupure Links 653 B-9000 Ghent Belgium;

    Univ Ghent Fac Biosci Engn Ctr Microbial Ecol & Technol Coupure Links 653 B-9000 Ghent Belgium;

  • 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
  • 中图分类
  • 关键词

    Biohydrometallurgy; Ureolysis; Metal recovery; Tailings; Waste processing;

    机译:生物氢素冶金;ureolysis;金属恢复;尾矿;废物加工;

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