Alkaline pressure oxidative leaching of bismuth-rich and arsenic-rich lead anode slime

被引:0
|
作者
Yun-long He
Rui-dong Xu
Shi-wei He
Han-sen Chen
Kuo Li
Yun Zhu
Qing-feng Shen
机构
[1] Kunming University of Science and Technology,Faculty of Metallurgical and Energy Engineering
[2] Kunming University of Science and Technology,State Key Laboratory of Complex Nonferrous Metal Resources Clean Utilization
关键词
lead anode slime; pressure leaching; arsenic removal; antimony; bismuth;
D O I
暂无
中图分类号
学科分类号
摘要
A new alkaline pressure oxidative leaching process (with NaNO3 as the oxidant and NaOH as the alkaline reagent) is proposed herein to remove arsenic, antimony, and lead from bismuth-rich and arsenic-rich lead anode slime for bismuth, gold, and silver enrichment. The effects of the temperature, liquid-to-solid ratio, leaching time, and reagent concentration on the leaching ratios of arsenic, antimony, and lead were investigated to identify the optimum leaching conditions. The experimental results under optimized conditions indicate that the average leaching ratios of arsenic, antimony and lead are 95.36%, 79.98%, 63.08%, respectively. X-ray diffraction analysis indicated that the leaching residue is composed of Bi, Bi2O3, Pb2Sb2O7, and trace amounts of NaSb(OH)6. Arsenic, antimony, and lead are thus separated from lead anode slime as Na3AsO4· 10H2O and Pb2Sb2O7. Scanning electron microscopy and energy-dispersive spectrometry imaging revealed that the samples undergo appreciable changes in their surface morphology during leaching and that the majority of arsenic, lead, and antimony is removed. X-ray photoelectron spectroscopy was used to demonstrate the variation in the valence states of the arsenic, lead, and antimony. The Pb(IV) and Sb(V) content was found to increase substantially with the addition of NaNO3.
引用
收藏
页码:689 / 700
页数:11
相关论文
共 37 条
  • [31] Recovery of Re from Re-Rich Arsenic Sulfide Slag by Oxidative Leaching: Thermodynamic and Kinetic Mechanism Studies
    Zhang, Jiahe
    Feng, Wenyu
    Cao, Huazhen
    Zhang, Huibin
    Zheng, Guoqu
    JOM, 2023, 75 (11) : 4910 - 4921
  • [32] Genome Sequence of the Photoarsenotrophic Bacterium Ectothiorhodospira sp. Strain BSL-9, Isolated from a Hypersaline Alkaline Arsenic-Rich Extreme Environment
    Hernandez-Maldonado, Jaime
    Stoneburner, Brendon
    Boren, Alison
    Miller, Laurence
    Rosen, Michael
    Oremland, Ronald S.
    Saltikov, Chad W.
    GENOME ANNOUNCEMENTS, 2016, 4 (05)
  • [33] Environmental assessment of the arsenic-rich, Rodalquilar gold-(copper-lead-zinc) mining district, SE Spain: Data from soils and vegetation
    Departamento de Cristalografía y Mineralogía, Facultad de Ciencias Geológicas, Universidad Complutense, 28040 Madrid, Spain
    不详
    不详
    不详
    Environ. Geol., 4 (761-777):
  • [34] Environmental assessment of the arsenic-rich, Rodalquilar gold-(copper-lead-zinc) mining district, SE Spain: data from soils and vegetation
    Oyarzun, Roberto
    Cubas, Paloma
    Higueras, Pablo
    Lillo, Javier
    Llanos, Willians
    ENVIRONMENTAL GEOLOGY, 2009, 58 (04): : 761 - 777
  • [35] Separation of Rhenium from Lead-Rich Molybdenite Concentrate via Hydrochloric Acid Leaching Followed by Oxidative Roasting
    Li, Guanghui
    You, Zhixiong
    Sun, Hu
    Sun, Rong
    Peng, Zhiwei
    Zhang, Yuanbo
    Jiang, Tao
    METALS, 2016, 6 (11)
  • [36] Bismuth Nanoparticles Encapsulated in Nitrogen-Rich Porous Carbon Nanofibers as a High-Performance Anode for Aqueous Alkaline Rechargeable Batteries
    Zhou, Kai
    Wang, Shuai
    Guo, Xinying
    Zhong, Guixiang
    Liu, Zhenbang
    Ma, Yingming
    Wang, Haoyu
    Bao, Yu
    Han, Dongxue
    Niu, Li
    SMALL, 2022, 18 (07)
  • [37] Treatment of high arsenic content lead copper matte by a pressure oxidative leaching combined with cyclone and vertical electro-deposition method
    Li, Jia-Yuan
    Wang, Tao
    Sun, Zhong-hui
    Wu, Jian-Jian
    Shen, Dian-Ling
    Yuan, Qing
    Li, Xiao-xuan
    Chen, Jun
    SEPARATION AND PURIFICATION TECHNOLOGY, 2018, 199 : 282 - 288