Institute of Multipurpose Utilization of Mineral Resources, Chinese Academy of Geological SciencesHost
2024 Vol. 45, No. 5
Article Contents

WU Tiantian, SHEN Zhihui, WANG Jianlong, HE Guixu, QIU Yueqin. Recent Advances for Phase Transformation and Reconstruction of Gold-bearing Inclusions during the Pre-oxidation of Refractory Gold Ores[J]. Multipurpose Utilization of Mineral Resources, 2024, 45(5): 85-94. doi: 10.3969/j.issn.1000-6532.2024.05.013
Citation: WU Tiantian, SHEN Zhihui, WANG Jianlong, HE Guixu, QIU Yueqin. Recent Advances for Phase Transformation and Reconstruction of Gold-bearing Inclusions during the Pre-oxidation of Refractory Gold Ores[J]. Multipurpose Utilization of Mineral Resources, 2024, 45(5): 85-94. doi: 10.3969/j.issn.1000-6532.2024.05.013

Recent Advances for Phase Transformation and Reconstruction of Gold-bearing Inclusions during the Pre-oxidation of Refractory Gold Ores

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  • This is an article in the field of mining engineering. Under the background of "double carbon" and "ballast stone" of refractory gold ore resources, pre-oxidation is an effective pretreatment method for efficient gold extraction from refractory gold ores. Destroying the finely impregnated gold inclusions, and eliminating or avoiding the passivation, robbing or secondary wrapping of gold by harmful substances, are the key and bottleneck problems to determine the gold recovery rate in refractory gold ores. Understanding the phase transformation and reconstruction evolution of gold-bearing minerals during pre-oxidation process is critical for inclusions destruction directly and gold leaching. In this article, the typical characteristics of refractory gold ores and existing pre-oxidation techniques were outlined, and the research advances in phase transformation and reconstruction of gold-bearing inclusions in roasting oxidation, hot-press oxidation, biological oxidation, chemical oxidation and other pre-oxidation processes were summarized. The result shows that the gold-bearing sulfides are mainly transformed into Fe oxides (or As oxides) and sulfate (or arsenate) by pre-oxidation. However, due to the coupling effect of multiple factors such as oxidation temperature, atmosphere or oxygen concentration, pH value, redox potential, Bacterial characteristics, etc., sulfides may also be converted into elemental sulfur, sulfur oxide, thiosulfate, jarosite and scorodite. In addition, jarosite, iron oxide and calcium sulfate are the main solid matters leading to the secondary package of gold. Pre-oxidation process and microscopic mechanisms, such as neutral thermobaric oxidation with low temperature and pressure, bacteria domestication with thermophilic, alkalophilic and arsenic-resistant properties, process enhancement of bacterial oxidation under multi-factor coupling, green and efficient oxidant screening, and chemical oxidation based on multi-field coupling, etc., still need to be deeply researched. The coupling relationship and regulation among ore characteristics, process reaction of pre-oxidation, phase transformation and reconstruction of gold-bearing materials and gold recovery rate are the research hotspots and difficulties in the green and efficient pre-oxidation field for refractory gold ores in the future.

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  • [1] 董延涛, 阴秀琦, 张艳飞, 等. 战略性矿产资源高质量开发利用问题与对策[J]. 地球学报, 2021, 42(2):145-150.DONG Y T, YIN X Q, ZHANG Y F, et al. Research on high quality development of strategic mineral resources industry[J]. Acta Geoscientica Sinica, 2021, 42(2):145-150.

    Google Scholar

    DONG Y T, YIN X Q, ZHANG Y F, et al. Research on high quality development of strategic mineral resources industry[J]. Acta Geoscientica Sinica, 2021, 42(2):145-150.

    Google Scholar

    [2] 丁全利, 胡容波. 《中国矿产资源报告(2021)》发布[N]. 中国自然资源报.DING Q L, HU R B. 《China's Mineral Resources Report (2021)》release[N]. China Natural Resources News.

    Google Scholar

    DING Q L, HU R B. 《China's Mineral Resources Report (2021)》release[N]. China Natural Resources News.

    Google Scholar

    [3] 2020年全球及中国黄金行业发展现状分析国内黄金产量位居全球首位[EB/OL]. (2020-09-07)[2022-08-07]. https://www.sohu.com/a/416906417_114835.Analysis of global and Chinese gold industry development status in 2020, domestic gold production ranks first in the world. [EB/OL]. (2020-09-07)[2022-08-07]. https://www.sohu.com/a/416906417_114835.

    Google Scholar

    Analysis of global and Chinese gold industry development status in 2020, domestic gold production ranks first in the world. [EB/OL]. (2020-09-07)[2022-08-07]. https://www.sohu.com/a/416906417_114835.

    Google Scholar

    [4] 梁晓, 胡瑞彪, 冯泽平. 广东某复杂难选难浸金矿工艺矿物学研究[J]. 矿产综合利用, 2019(6):65-68.LIANG X, HU R B, FENG Z P. Study on the technological mineralogy of a complex refractory gold ore in Guangdong[J]. Multipurpose Utilization of Mineral Resources, 2019(6):65-68.

    Google Scholar

    LIANG X, HU R B, FENG Z P. Study on the technological mineralogy of a complex refractory gold ore in Guangdong[J]. Multipurpose Utilization of Mineral Resources, 2019(6):65-68.

    Google Scholar

    [5] Zhang X, Kou J, Sun C. A comparative study of the thermal decomposition of pyrite under microwave and conventional heating with different temperatures[J]. Journal of Analytical and Applied Pyrolysis, 2019, 138:41-53. doi: 10.1016/j.jaap.2018.12.002

    CrossRef Google Scholar

    [6] 张磊, 郭学益, 田庆华, 等. 难处理金矿预处理方法研究进展及工业应用[J]. 黄金, 2021, 42(6):60-68.ZHANG L, GUO X Y, TIAN Q H, et al. Research progress and industrial application of pretreatment methods for refractory gold ores[J]. GOLD, 2021, 42(6):60-68.

    Google Scholar

    ZHANG L, GUO X Y, TIAN Q H, et al. Research progress and industrial application of pretreatment methods for refractory gold ores[J]. GOLD, 2021, 42(6):60-68.

    Google Scholar

    [7] 孙留根, 袁朝新, 王云, 等. 难处理金矿提金的现状及发展趋势[J]. 有色金属(冶炼部分), 2015(4):38-43.SUN L G, YUAN C X, WANG Y, et al. Status and development of gold extraction from refractory gold ore[J]. Nonferrous Metals(Extractive Metallurgy), 2015(4):38-43.

    Google Scholar

    SUN L G, YUAN C X, WANG Y, et al. Status and development of gold extraction from refractory gold ore[J]. Nonferrous Metals(Extractive Metallurgy), 2015(4):38-43.

    Google Scholar

    [8] 张辰敏. 工艺矿物学在难处理金矿矿物加工中的应用[J]. 中国金属通报, 2021(5):158-159.ZHANG C M. Application of process mineralogy in refractory gold ore processing[J]. China Metal Bulletin, 2021(5):158-159.

    Google Scholar

    ZHANG C M. Application of process mineralogy in refractory gold ore processing[J]. China Metal Bulletin, 2021(5):158-159.

    Google Scholar

    [9] 李塨灏, 焦芬, 吴奕彤, 等. 难处理金矿预处理及金回收技术进展[J/OL]. 贵金属. https://kns.cnki.net/kcms/detail/53.1063.TG.20220709.1242.002.html.LI G H, JIAO F, WU Y T, et al. Pretreatment and gold extraction status for refractory gold ore [J/OL]. Precious Metals, https://kns.cnki.net/kcms/detail/53.1063.TG.20220709.1242.002.html.

    Google Scholar

    LI G H, JIAO F, WU Y T, et al. Pretreatment and gold extraction status for refractory gold ore [J/OL]. Precious Metals, https://kns.cnki.net/kcms/detail/53.1063.TG.20220709.1242.002.html.

    Google Scholar

    [10] 李骞, 董中林, 张雁, 等. 含硫砷含碳金精矿提金工艺研究[J]. 黄金, 2016, 37(11):41-45.LI Q, DONG Z L, ZHANG Y, et al. Study on gold extraction from carbonaceous gold concentrates containing sulfur and arsenic[J]. GOLD, 2016, 37(11):41-45.

    Google Scholar

    LI Q, DONG Z L, ZHANG Y, et al. Study on gold extraction from carbonaceous gold concentrates containing sulfur and arsenic[J]. GOLD, 2016, 37(11):41-45.

    Google Scholar

    [11] 宋言. 高硫含砷难处理金矿的细菌氧化及强化浸出机理研究[D]. 沈阳: 东北大学, 2019.SONG Y. Study on bio-oxidation and strengthening bio-oxidation mechanism of refractory high-sulfur and arsenic-bearing gold concentrate[D]. Shenyang: Northeastern University, 2019.

    Google Scholar

    SONG Y. Study on bio-oxidation and strengthening bio-oxidation mechanism of refractory high-sulfur and arsenic-bearing gold concentrate[D]. Shenyang: Northeastern University, 2019.

    Google Scholar

    [12] 赵磊. 山东某浮选金精矿氰化浸出实验研究[J]. 矿产综合利用, 2021(5):167-171.ZHAO L. Study on cyanide leaching of a floating gold concentrate in Shandong[J]. Multipurpose Utilization of Mineral Resources, 2021(5):167-171.

    Google Scholar

    ZHAO L. Study on cyanide leaching of a floating gold concentrate in Shandong[J]. Multipurpose Utilization of Mineral Resources, 2021(5):167-171.

    Google Scholar

    [13] 杨佐怀, 董越, 郭俊杰, 等 . 新疆某金矿选冶联合工艺研究[J]. 矿产综合利用, 2022(3):121-125.YANG Z H, DONG Y, GUO J J, et al. Beneficiation and metallurgical process study for a gold mine in Xinjiang[J]. Multipurpose Utilization of Mineral Resources, 2022(3):121-125. doi: 10.3969/j.issn.1000-6532.2022.03.021

    CrossRef Google Scholar

    YANG Z H, DONG Y, GUO J J, et al. Beneficiation and metallurgical process study for a gold mine in Xinjiang[J]. Multipurpose Utilization of Mineral Resources, 2022(3):121-125. doi: 10.3969/j.issn.1000-6532.2022.03.021

    CrossRef Google Scholar

    [14] Guo X, Zhang L, Tian Q, et al. Stepwise extraction of gold and silver from refractory gold concentrate calcine by thiourea[J]. Hydrometallurgy, 2020, 194:105330. doi: 10.1016/j.hydromet.2020.105330

    CrossRef Google Scholar

    [15] 廖钦桓, 李旭坚. 难浸金矿预处理技术及其应用[J]. 采矿工程, 2017(24):76-78.LIAO Q H, LI X J. Study on cyanide pretreatment technology of refractory gold ore and its application[J]. Mining Engineering, 2017(24):76-78.

    Google Scholar

    LIAO Q H, LI X J. Study on cyanide pretreatment technology of refractory gold ore and its application[J]. Mining Engineering, 2017(24):76-78.

    Google Scholar

    [16] 冯吉福, 周卫宁, 李尽善, 等. 微细浸染型金矿酸性热压氧化预处理动力学研究[J]. 贵金属, 2017, 38(3):10-16.FENG J F, ZHOU W N, LI J S, et al. Study on the kinetics of pretreatment for micro-disseminated sulfide gold ores by acidic autoclave oxidation[J]. Precious Metals, 2017, 38(3):10-16.

    Google Scholar

    FENG J F, ZHOU W N, LI J S, et al. Study on the kinetics of pretreatment for micro-disseminated sulfide gold ores by acidic autoclave oxidation[J]. Precious Metals, 2017, 38(3):10-16.

    Google Scholar

    [17] 姚国成, 阮仁满, 温建康. 难处理金矿的生物预氧化技术及工业应用[J]. 矿产综合利用, 2003(1):33-39.YAO G C, RUAN R M, WEN J K, et al. Bio-oxidation pretreatment technology for refractory gold ores and its commercial application[J]. Multipurpose Utilization of Mineral Resources, 2003(1):33-39.

    Google Scholar

    YAO G C, RUAN R M, WEN J K, et al. Bio-oxidation pretreatment technology for refractory gold ores and its commercial application[J]. Multipurpose Utilization of Mineral Resources, 2003(1):33-39.

    Google Scholar

    [18] Nan X, Cai X, Kong J. Pretreatment process on refractory gold ores with As[J]. ISIJ International, 2014, 54(3):543-547. doi: 10.2355/isijinternational.54.543

    CrossRef Google Scholar

    [19] Qin H, Guo X, Tian Q, et al. Recovery of gold from sulfide refractory gold ore: Oxidation roasting pretreatment and gold extraction[J]. Minerals Engineering, 2021, 164:106822. doi: 10.1016/j.mineng.2021.106822

    CrossRef Google Scholar

    [20] Wu H, Feng Y, Li H, et al. Effect of sodium carbonate on alkaline self-leaching of gold from flotation gold ore[J]. Separation and Purification Technology, 2021, 256:117499. doi: 10.1016/j.seppur.2020.117499

    CrossRef Google Scholar

    [21] Prasad A, Singru R M, Biswas A K. Study of the roasting of pyrite minerals by mossbauer spectroscopy[J]. Physica Status Solidi A, 1985, 1:267-271.

    Google Scholar

    [22] 赵留成, 李绍英, 孙春宝, 等. 金精矿中性焙烧过程中的物相转变及其磁性特征研究[J]. 矿产保护与利用, 2017(2):69-74.ZHAO L C, LI S Y, SUN C B, et al. Study on phase transformation and magnetic properties of gold concentrate in neutral roasting process[J]. Conservation and Utilization of Mineral Resources, 2017(2):69-74.

    Google Scholar

    ZHAO L C, LI S Y, SUN C B, et al. Study on phase transformation and magnetic properties of gold concentrate in neutral roasting process[J]. Conservation and Utilization of Mineral Resources, 2017(2):69-74.

    Google Scholar

    [23] Zhang X, Song Y, Wu L, et al. Unraveling the dissociation mechanism of gold in carbonaceous gold ore during vacuum roasting pretreatment: Effect of pyrite[J]. Minerals Engineering, 2022, 184:107658. doi: 10.1016/j.mineng.2022.107658

    CrossRef Google Scholar

    [24] Port S T, Chevrier V F. Stability of pyrrhotite under experimentally simulated Venus conditions[J]. Planetary and Space Science, 2020, 193:105022. doi: 10.1016/j.pss.2020.105022

    CrossRef Google Scholar

    [25] 辰巳良介. Pretreatment method for gold ore and method for recovering gold from gold ore. JP2017179430A[P]. 2016.03. 29.Ryousuke T. Pretreatment method for gold ore and method for recovering gold from gold ore. JP2017179430A[P]. 2016.03. 29.

    Google Scholar

    Ryousuke T. Pretreatment method for gold ore and method for recovering gold from gold ore. JP2017179430A[P]. 2016.03. 29.

    Google Scholar

    [26] Zhang X, Sun C, Xing Y, et al. Thermal decomposition behavior of pyrite in a microwave field and feasibility of gold leaching with generated elemental sulfur from the decomposition of gold-bearing sulfides[J]. Hydrometallurgy, 2018, 180:210-220. doi: 10.1016/j.hydromet.2018.07.012

    CrossRef Google Scholar

    [27] Li Y, Wang R, Han Y, et al. Phase transformation in suspension roasting of oolitic hematite ore[J]. Journal of Central South University, 2015, 22(12):4560-4565. doi: 10.1007/s11771-015-3006-8

    CrossRef Google Scholar

    [28] 贾玉娟. 高砷高硫金矿焙砂碱介质物相重构及非氰浸金[D]. 贵阳: 贵州大学, 2019.JIA Y J. Phase reconstruction and non-cyanide leaching of high arsenic and high sulfur gold calcine in alkali mediums[D]. Guiyang: Guizhou University, 2019.

    Google Scholar

    JIA Y J. Phase reconstruction and non-cyanide leaching of high arsenic and high sulfur gold calcine in alkali mediums[D]. Guiyang: Guizhou University, 2019.

    Google Scholar

    [29] Aza A H, Rodríguez M A, Rodríguez J L, et al. Decomposition of dolomite monitored by neutron thermodiffractometry[J]. J AM CERAM SOC, 2004, 85(4):881-888.

    Google Scholar

    [30] Zhang X, Song Y, Wu L, et al. Improvement of the leach efficiency of carbonaceous gold concentrates using reduction roasting pretreatment technology[J]. Advanced Powder Technology, 2022, 33(2):103387. doi: 10.1016/j.apt.2021.12.006

    CrossRef Google Scholar

    [31] Yang Y, Liu J, Wang Z, et al. CO2-mediated sulfur evolution chemistry of pyrite oxidation during oxy-fuel combustion[J]. Combustion and Flame, 2020, 218:75-83. doi: 10.1016/j.combustflame.2020.03.029

    CrossRef Google Scholar

    [32] Jin J, Han Y, Li H, et al. Mineral phase and structure changes during roasting of fine-grained carbonaceous gold ores and their effects on gold leaching efficiency[J]. Chinese Journal of Chemical Engineering, 2019, 27(5):1184-1190. doi: 10.1016/j.cjche.2018.08.006

    CrossRef Google Scholar

    [33] 吴冰. 复杂难处理金矿石预处理工艺研究现状及进展[J]. 黄金, 2020, 41(5):65-72.WU B. Current status and progress of the research on complex refractory gold ore pretreatment technology[J]. Gold, 2020, 41(5):65-72.

    Google Scholar

    WU B. Current status and progress of the research on complex refractory gold ore pretreatment technology[J]. Gold, 2020, 41(5):65-72.

    Google Scholar

    [34] Zhang D, Xiao Q, Liu W, et al. Acid leaching decarbonization and following pressure oxidation of carbonic refractory gold ore[J]. Journal of Central South University, 2016, 23(7):1584-1590. doi: 10.1007/s11771-016-3212-z

    CrossRef Google Scholar

    [35] 张文波. 加压氧化浸出工艺的机理研究[J]. 黄金科学技术, 2011, 19(5):40-44.ZHANG W B. Research on the mechanism of pressure oxidation leaching process[J]. Gold Science and Technology, 2011, 19(5):40-44.

    Google Scholar

    ZHANG W B. Research on the mechanism of pressure oxidation leaching process[J]. Gold Science and Technology, 2011, 19(5):40-44.

    Google Scholar

    [36] 庄荣传, 黄怀国, 范道焱, 等. 一种含砷精金矿的热压氧化预处理方法:CN201610274495.6[P].2018-10-16.ZHUANG R C, HUANG H G, FAN D Y, et al. A hot-press oxidation pretreatment method for arsenic-bearing gold concentrates: CN201610274495.6 [P]. 2018-10-16.

    Google Scholar

    ZHUANG R C, HUANG H G, FAN D Y, et al. A hot-press oxidation pretreatment method for arsenic-bearing gold concentrates: CN201610274495.6 [P]. 2018-10-16.

    Google Scholar

    [37] Ng W S, Liu Y, Chen M. The effect of curing on arsenic precipitation and kinetic study of pressure oxidation of pyrite and arsenopyrite[J]. Minerals Engineering, 2022, 185:107675. doi: 10.1016/j.mineng.2022.107675

    CrossRef Google Scholar

    [38] 徐忠敏, 翁占平, 国洪柱. 复杂难处理金精矿加压氧化预处理工艺试验研究[J]. 黄金, 2017, 38(2):54-57.XU Z M, WENG Z P, GUO H Z. Experimental study on the treatment of complex refractory gold concentrates by pressure oxidation pretreatment[J]. GOLD, 2017, 38(2):54-57.

    Google Scholar

    XU Z M, WENG Z P, GUO H Z. Experimental study on the treatment of complex refractory gold concentrates by pressure oxidation pretreatment[J]. GOLD, 2017, 38(2):54-57.

    Google Scholar

    [39] Xu B, Li K, Zhong Q, et al. Study on the oxygen pressure alkaline leaching of gold with generated thiosulfate from sulfur oxidation[J]. Hydrometallurgy, 2018, 177:178-186. doi: 10.1016/j.hydromet.2018.03.006

    CrossRef Google Scholar

    [40] Zhang L, Guo X, Tian Q, et al. Extraction of gold from typical Carlin gold concentrate by pressure oxidation pretreatment - Sodium jarosite decomposition and polysulfide leaching[J]. Hydrometallurgy, 2022, 208:105743. doi: 10.1016/j.hydromet.2021.105743

    CrossRef Google Scholar

    [41] Zhang S, Yang H, Ma P, et al. Column bio-oxidation of low-grade refractory gold ore containing high-arsenic and high-sulfur: Insight on change in microbial community structure and sulfide surface corrosion[J]. Minerals Engineering, 2022, 175:107201. doi: 10.1016/j.mineng.2021.107201

    CrossRef Google Scholar

    [42] Wu Z, Zhong S P, Wu Z L, et al. Electrochemical behavior of carbon paste electrode with gold-bearing pyrite in bioleaching[J]. Advanced Materials Research, 2013, 825:360-363. doi: 10.4028/www.scientific.net/AMR.825.360

    CrossRef Google Scholar

    [43] 李骞, 徐斌, 罗君, 等. 一种协同强化细菌氧化预处理含砷金矿的方法:CN108998667A[P]. 2018-12-14.LI Q, XU B, LUO J, et al. A synergistic enhanced bacterial oxidation pretreatment method for arsenic-bearing gold ores: CN108998667A[P]. 2018-12-14.

    Google Scholar

    LI Q, XU B, LUO J, et al. A synergistic enhanced bacterial oxidation pretreatment method for arsenic-bearing gold ores: CN108998667A[P]. 2018-12-14.

    Google Scholar

    [44] Mubarok M Z, Winarko R, Chaerun S K, et al. Improving gold recovery from refractory gold ores through biooxidation using iron-sulfur-oxidizing/sulfur-oxidizing mixotrophic bacteria[J]. Hydrometallurgy, 2017, 168:69-75. doi: 10.1016/j.hydromet.2016.10.018

    CrossRef Google Scholar

    [45] 邢志军, 赵俊蔚, 赵国惠, 等. 一种含砷硫碳的难处理金精矿的二次氧化预处理工艺: CN102011013A[P]. 2011-04-13.XING Z J, ZHAO J W, ZHAO G H, et al. A secondary oxidation pretreatment process for hard-to-treat gold concentrates containing arsenic sulfur and carbon: CN102011013A[P]. 2011-04-13.

    Google Scholar

    XING Z J, ZHAO J W, ZHAO G H, et al. A secondary oxidation pretreatment process for hard-to-treat gold concentrates containing arsenic sulfur and carbon: CN102011013A[P]. 2011-04-13.

    Google Scholar

    [46] Konadu K T, Mendoza D M, Huddy R J, et al. Biological pretreatment of carbonaceous matter in double refractory gold ores: A review and some future considerations[J]. Hydrometallurgy, 2020, 196:105434. doi: 10.1016/j.hydromet.2020.105434

    CrossRef Google Scholar

    [47] Deng Y, Zhang D, Xia J, et al. Enhancement of arsenopyrite bioleaching by different Fe(III) compounds through changing composition and structure of passivation layer[J]. Journal of Materials Research and Technology, 2020, 9(6):12364-12377. doi: 10.1016/j.jmrt.2020.08.088

    CrossRef Google Scholar

    [48] Zhang D, Chen H, Xia J, et al. Humic acid promotes arsenopyrite bio-oxidation and arsenic immobilization[J]. Journal of Hazardous Materials, 2020, 384:121359. doi: 10.1016/j.jhazmat.2019.121359

    CrossRef Google Scholar

    [49] 张世镖, 郑晔, 帮福末, 等. 一种氧化剂与催化剂协同强化含砷金精矿的氧化预处理方法: CN105907961A[P]. 2016-08-31.ZHANG S B, ZHENG Y, BANG F M, et al. An oxidation pretreatment method for arsenic-bearing gold concentrates enhanced by a synergistic oxidant and catalyst: CN105907961A[P]. 2016-08-31.

    Google Scholar

    ZHANG S B, ZHENG Y, BANG F M, et al. An oxidation pretreatment method for arsenic-bearing gold concentrates enhanced by a synergistic oxidant and catalyst: CN105907961A[P]. 2016-08-31.

    Google Scholar

    [50] Bidari E, Aghazadeh V. Pyrite from Zarshuran Carlin-type gold deposit: Characterization, alkaline oxidation pretreatment, and cyanidation[J]. Hydrometallurgy, 2018, 179:222-231. doi: 10.1016/j.hydromet.2018.06.019

    CrossRef Google Scholar

    [51] Ciminelli V S T, Osseo-Asare K. Kinetics of pyrite oxidation in sodium hydroxide solutions[J]. 1995, 26(4): 677-685.

    Google Scholar

    [52] Bare G T, Mbayo J J K, Ndlovu S, et al. Mineralogical characterization and acid pretreatment of a gold calcine leach residue[J]. Minerals, 2022, 12(1):10.

    Google Scholar

    [53] 杨永斌, 曾冠武, 李骞, 等. 高硫砷金矿焙砂的硫酸熟化法预处理[J]. 中国有色金属学报, 2014, 24(9):2380-2386.YANG Y B, ZENG G W, LI Q, et al. Pretreatment by sulfuric acid-curing of calcine roasting for gold ores with high sulfur and arsenic contents[J]. The Chinese Journal of Nonferrous Metals, 2014, 24(9):2380-2386.

    Google Scholar

    YANG Y B, ZENG G W, LI Q, et al. Pretreatment by sulfuric acid-curing of calcine roasting for gold ores with high sulfur and arsenic contents[J]. The Chinese Journal of Nonferrous Metals, 2014, 24(9):2380-2386.

    Google Scholar

    [54] Gui Q, Hu Y, Wang S, et al. Mechanism of synergistic pretreatment with ultrasound and ozone to improve gold and silver leaching percentage[J]. Applied Surface Science, 2022, 576:151726. doi: 10.1016/j.apsusc.2021.151726

    CrossRef Google Scholar

    [55] Xu G, Deng F, Fan W, et al. Pre-oxidation of refractory gold concentrate by electrochemical methods in alkaline electrolyte[J]. Materials Today Communications, 2022, 31:103397. doi: 10.1016/j.mtcomm.2022.103397

    CrossRef Google Scholar

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