Chemical Industry and Engineering Progress ›› 2024, Vol. 43 ›› Issue (7): 4015-4031.DOI: 10.16085/j.issn.1000-6613.2023-0940
• Resources and environmental engineering • Previous Articles
LIN Xiang(), JIAO Fen, WEI Qian(), ZHANG Zhengquan
Received:
2023-06-07
Revised:
2023-10-25
Online:
2024-08-14
Published:
2024-07-10
Contact:
WEI Qian
通讯作者:
魏茜
作者简介:
林翔(2000—),男,硕士研究生,研究方向为复杂矿物浮选分离。E-mail:llxxlin@163.com。
基金资助:
CLC Number:
LIN Xiang, JIAO Fen, WEI Qian, ZHANG Zhengquan. Research progress of sulfidation flotation mechanism and influencing factors of smithsonite[J]. Chemical Industry and Engineering Progress, 2024, 43(7): 4015-4031.
林翔, 焦芬, 魏茜, 张政权. 菱锌矿硫化浮选机理及影响因素研究进展[J]. 化工进展, 2024, 43(7): 4015-4031.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2023-0940
时间/min | 硫组分剩余浓度/×10-5mol·L-1 |
---|---|
1 | 31.5 |
3 | 22.4 |
6 | 16.6 |
10 | 14.6 |
15 | 13.2 |
20 | 12.3 |
30 | 12.1 |
时间/min | 硫组分剩余浓度/×10-5mol·L-1 |
---|---|
1 | 31.5 |
3 | 22.4 |
6 | 16.6 |
10 | 14.6 |
15 | 13.2 |
20 | 12.3 |
30 | 12.1 |
1 | 刘红召, 杨卉芃, 冯安生. 全球锌矿资源分布及开发利用[J]. 矿产保护与利用, 2017(1): 113-118. |
LIU Hongzhao, YANG Huipeng, FENG Ansheng. The distribution and utilization of global zinc resource[J]. Conservation and Utilization of Mineral Resources, 2017(1): 113-118. | |
2 | MOHR Steve, GIURCO Damien, RETAMAL Monique, et al. Global projection of lead-zinc supply from known resources[J]. Resources, 2018, 7(1): 17. |
3 | 潘志君, 夏鹏, 朱清, 等. 中国锌矿资源开发利用形势分析[J]. 地球学报, 2021, 42(2): 258-264. |
PAN Zhijun, XIA Peng, ZHU Qing, et al. An analysis of the development and utilization situation of China’s zinc ore resources[J]. Acta Geoscientica Sinica, 2021, 42(2): 258-264. | |
4 | YAN Lingyu, WANG Anjian, CHEN Qishen, et al. Dynamic material flow analysis of zinc resources in China[J]. Resources Conservation and Recycling, 2013, 75: 23-31. |
5 | 黄斌, 单勇, 孙广周, 等. 兰坪氧化铅锌矿选矿试验研究[J]. 矿产综合利用, 2018(2): 42-46, 24. |
HUANG Bin, SHAN Yong, SUN Guangzhou, et al. Experimental research on beneficiation of lanping’s oxide lead-zinc ore[J]. Multipurpose Utilization of Mineral Resources, 2018(2): 42-46, 24. | |
6 | 周娟, 廖亚龙, 李冰洁, 等. 多金属复杂硫化铜矿中有价金属的分离研究现状与进展[J]. 化工进展, 2015, 34(1): 252-257. |
ZHOU Juan, LIAO Yalong, LI Bingjie, et al. Valuable metals extraction from complex multi-metal copper sulfide ore[J]. Chemical Industry and Engineering Progress, 2015, 34(1): 252-257. | |
7 | 刘殿文, 李佳磊, 刘瑞增, 等. 典型氧化铜铅锌矿物浮选的硫化及其强化研究新进展[J]. 中国科学基金, 2021, 35(6): 885-894. |
LIU Dianwen, LI Jialei, LIU Ruizeng, et al. Sulfidization mechanism and its enhancement of typical oxidized minerals of base metals: A recent review[J]. Bulletin of National Natural Science Foundation of China, 2021, 35(6): 885-894. | |
8 | 陈建华. 浮选配位化学原理[M]. 北京: 科学出版社, 2021: 89. |
CHEN Jianhua. Coordination chemistry of flotation[M]. Beijing: Science Press, 2021: 89. | |
9 | 李化全, 王明华, 邱贵宝. 硫酸酸解钙钛矿相精矿的行为[J].化工进展, 2023, 42(S1): 536-541. |
LI Huaquan, WANG Minghua, QIU Guibao. Behavior of sulfuric acid acidolysis of perovskite concentrates[J]. Chemical Industry and Engineering Progress, 2023, 42(S1): 536-541. | |
10 | 张明焱, 刘燕, 张雪婷, 等. 非贵金属双功能催化剂在锌空气电池研究进展[J].化工进展, 2023, 42(S1): 276-286. |
ZHANG Mingyan, LIU Yan, ZHANG Xueting, et al. Research progress of non-noble metal bifunctional catalysts in zinc air batteries[J]. Chemical Industry and Engineering Progress, 2023, 42(S1): 276-286. | |
11 | HOSSEINI S H, FORSSBERG E. Adsorption studies of smithsonite flotation using dodecylamine and oleic acid[J]. Mining, Metallurgy & Exploration, 2006, 23(2): 87-96. |
12 | 王纪镇, 孙兆辉, 白俊智. 菱锌矿晶体各向异性与表面性质研究[J]. 矿产保护与利用, 2021, 41(2): 1-6. |
WANG Jizhen, SUN Zhaohui, BAI Junzhi. Research on crystal anisotropy and surface properties of smithsonite[J]. Conservation and Utilization of Mineral Resources, 2021, 41(2): 1-6. | |
13 | EJTEMAEI Majid, GHARABAGHI Mahdi, IRANNAJAD Mehdi. A review of zinc oxide mineral beneficiation using flotation method[J]. Advances in Colloid and Interface Science, 2014, 206: 68-78. |
14 | 刘诚, 冯其明, 张国范, 等. 油酸钠体系下碳酸钠对菱锌矿浮选行为影响及作用机理[J]. 中国有色金属学报, 2017, 27(11): 2379-2384. |
LIU Cheng, FENG Qiming, ZHANG Guofan, et al. Effect of sodium carbonate on flotation behavior of smithsonite and its mechanism in presence of sodium oleate[J]. The Chinese Journal of Nonferrous Metals, 2017, 27(11): 2379-2384. | |
15 | 陈晔, 唐箫琴, 陈建华, 等. 白铅矿(PbCO3)和菱锌矿(ZnCO3)硫化机理的DFT研究[J]. Trans Nonferrous Met Soc China: 1-29. |
CHEN Ye, TANG Xiaoqin, CHEN Jianhua, et al.DFT study of sulfidization mechanism of cerussite (PbCO3) and smithsonite (ZnCO3)[J]. Trans Nonferrous Met Soc China: 1-29. | |
16 | 孟祥彬, 高善彬, 胡胜, 等. 以单质硫为硫化介质的加氢催化剂间歇釜器外预硫化工艺[J]. 化工进展, 2015, 34(7): 1877-1881. |
MENG Xiangbin, GAO Shanbin, HU Sheng, et al. Presulfidation with sulphur for hydrogenation catalyst in a batch reactor[J]. Chemical Industry and Engineering Progress, 2015, 34(7): 1877-1881. | |
17 | 李俏春, 郭恩惠, 李阳, 等. 类水滑石衍生锌基复合氧化物的硫化再生行为[J]. 化工进展, 2021, 40(11): 6278-6286. |
LI Qiaochun, GUO Enhui, LI Yang, et al. Desulfurization and regeneration behaviors of zinc-based composite oxides derived from hydrotalcite[J]. Chemical Industry and Engineering Progress, 2021, 40(11): 6278-6286. | |
18 | 高康, 张弦, 陈帅军, 等. 湿法脱硫中多硫离子分离方法的建立[J].化工进展, 2023, 43(4): 2210-2218. |
GAO Kang, ZHANG Xian, CHEN Shuaijun, et al. Establishment of separation method for polysulfide ions in wet desulfurization[J]. Chemical Industry and Engineering Progress, 2023, 43(4): 2210-2218. | |
19 | WU Dandan, WEN Shuming, DENG Jiushuai, et al. Study on the sulfidation behavior of smithsonite[J]. Applied Surface Science, 2015, 329: 315-320. |
20 | 王瑜, 刘建, 曾勇, 等. 不同硫组分在菱锌矿表面吸附的计算研究[J]. 有色金属工程, 2019, 9(6): 69-75, 83. |
WANG Yu, LIU Jian, ZENG Yong, et al. Study on the adsorption of different sulfur components on the surface of smithsonite[J]. Nonferrous Metals Engineering, 2019, 9(6): 69-75, 83. | |
21 | LIU Ruizeng, PEI Bin, LIU Zhicheng, et al. Improved understanding of the sulfidization mechanism in amine flotation of smithsonite: An XPS, AFM and UV-vis DRS study[J]. Minerals, 2020, 10(4): 370. |
22 | 沈智豪, 张谦, 方健, 等. 菱锌矿表面硫化研究进展[J]. 有色金属(选矿部分), 2021(1): 37-46, 59. |
SHEN Zhihao, ZHANG Qian, FANG Jian, et al. Research progress in surface sulfidization of smithsonite[J]. Nonferrous Metals (Mineral Processing Section), 2021(1): 37-46, 59. | |
23 | LI C L, BAI S J, DING Z, et al. Visual MINTEQ model, ToF-SIMS, and XPS study of smithsonite surface sulfidation behavior: Zinc sulfide precipitation adsorption[J]. Journal of the Taiwan Institute of Chemical Engineers, 2019, 96: 53-62. |
24 | 曾鹏, 谢海云, 晋艳玲, 等. 典型铜铅锌氧化矿的强化硫化浮选研究进展[J]. 矿冶, 2022, 31(2): 22-28. |
ZENG Peng, XIE Haiyun, JIN Yanling, et al. Research progress of enhanced sulfide flotation for typical copper-lead-zinc oxide ores[J]. Mining and Metallurgy, 2022, 31(2): 22-28. | |
25 | 宋凯伟, 李佳磊, 蔡锦鹏, 等. 典型氧化铜铅锌矿物浮选的表面硫化研究进展[J]. 化工进展, 2018, 37(9): 3618-3628. |
SONG Kaiwei, LI Jialei, CAI Jinpeng, et al. A review on surface sulfidization of typical copper/lead/zinc oxide minerals flotation[J]. Chemical Industry and Engineering Progress, 2018, 37(9): 3618-3628. | |
26 | WANG Daowei, JIAO Fen, QIN Wenqing, et al. Effect of surface oxidation on the flotation separation of chalcopyrite and galena using sodium humate as depressant[J]. Separation Science and Technology, 2018, 53(6): 961-972. |
27 | KHALEGHI Atefeh, SADRAMELI Seyed Mojtaba, MANTEGHIAN Mehrdad. Thermodynamic and kinetics investigation of homogeneous and heterogeneous nucleation[J]. Reviews in Inorganic Chemistry, 2020, 40(4): 167-192. |
28 | Zdeněk KOŽÍŠEK. Crystallization in small droplets: Competition between homogeneous and heterogeneous nucleation[J]. Journal of Crystal Growth, 2019, 522: 53-60. |
29 | LUO Bin, LIU Quanjun, DENG Jiushuai, et al. Characterization of sulfide film on smithsonite surface during sulfidation processing and its response to flotation performance[J]. Powder Technology, 2019, 351: 144-152. |
30 | TRINDADE PEDROSA Elisabete, KURGANSKAYA Inna, FISCHER Cornelius, et al. A statistical approach for analysis of dissolution rates including surface morphology[J]. Minerals, 2019, 9(8): 458. |
31 | FENG Qicheng, WEN Shuming. Formation of zinc sulfide species on smithsonite surfaces and its response to flotation performance[J]. Journal of Alloys and Compounds, 2017, 709: 602-608. |
32 | 李春龙, 吕超, 吴丹丹, 等. 氧化锌矿石选矿研究现状及发展趋势[J]. 矿产综合利用, 2018(6): 19-24. |
LI Chunlong, Chao LYU, WU Dandan, et al. Research status and developing trend of beneficiation of zinc oxide ore[J]. Multipurpose Utilization of Mineral Resources, 2018(6): 19-24. | |
33 | 胡岳华, 邱冠周, 袁诚, 等. 孔雀石/菱锌矿浮选溶液化学研究[J]. 有色金属, 1996(2): 40-44. |
HU Yuehua, QIU Guanzhou, YUAN Cheng, et al. Solution chemistry studies on flotation of malachite and smithsonite[J]. Nonferrous Metals Engineering, 1996(2): 40-44. | |
34 | 王美丽. 铅离子在菱锌矿表面的吸附特性及其对硫化浮选的影响机制[D]. 昆明: 昆明理工大学, 2022. |
WANG Meili. Adsorption characteristics of lead ions on the surface of smithsonite and its influence mechanism on sulfide flotation[D].Kunming: Kunming University of Science and Technology, 2022. | |
35 | LIU Jian, ZENG Yong, EJTEMAEI Majid, et al. DFT simulation of S-species interaction with smithsonite (001) surface: Effect of water molecule adsorption position[J]. Results in Physics, 2019, 15: 102575. |
36 | ZHAO Wenjuan, LIU Dianwen, FENG Qicheng, et al. DFT insights into the electronic properties and adsorption mechanism of HS–on smithsonite (101) surface[J]. Minerals Engineering, 2019, 141: 105846. |
37 | SHI Qing, ZHANG Guofan, FENG Qiming, et al. Effect of solution chemistry on the flotation system of smithsonite and calcite[J]. International Journal of Mineral Processing, 2013, 119: 34-39. |
38 | 王瑜. 菱锌矿表面硫化层稳定性及硫化机理研究[D]. 昆明: 昆明理工大学, 2019. |
WANG Yu. Study on the surface sulfidation layer stability and sulfidation mechanism of smithsonite[D]. Kunming: Kunming University of Science and Technology, 2019. | |
39 | 李春龙. 氯-铵组元体系下菱锌矿硫化行为及机理研究[D]. 昆明: 昆明理工大学, 2019. |
LI Chunlong. Sulfurization behavior and mechanism of smithsonite in chlorine-ammonium component system[D]. Kunming: Kunming University of Science and Technology, 2019. | |
40 | SCHOTT Jacques, POKROVSKY Oleg S, OELKERS Eric H. The link between mineral dissolution/precipitation kinetics and solution chemistry[M]//Thermodynamics and kinetics of water-rock interaction. De Gruyter, 2009: 207-258. |
41 | 谭凯旋, 张哲儒, 王中刚. 矿物溶解的表面化学动力学机理[J]. 矿物学报, 1994, 14(3): 207-214. |
TAN Kaixuan, ZHANG Zheru, WANG Zhonggang. The mechanism of surface chemical kinetics of dissolution of minerals[J]. Acta Mineralogica Sinica, 1994, 14(3): 207-214. | |
42 | EMMANUEL Simon. Modeling the effect of mineral armoring on the rates of coupled dissolution-precipitation reactions: Implications for chemical weathering[J]. Chemical Geology, 2022, 601: 120868. |
43 | ZENG Yong, LIU Jian, DONG Wenchao, et al. Study on sulfide layer attenuation behavior of smithsonite during sulfidization flotation[J]. Frontiers in Materials, 2020, 6: 347. |
44 | LUO Yuanjia, Leming OU, CHEN Jianhua, et al. Experimental and DFT study of the sulfidation of smithsonite: Impact of water and oxygen[J]. Applied Surface Science, 2022, 592: 153235. |
45 | WANG Mengtao, ZHANG Guofan, CHEN Yanfei, et al. Effect of dissolved oxygen on the sulfidization flotation of smithsonite [J]. Minerals Engineering, 2022, 186:107741. |
46 | 梁冬云, 张志雄, 许志华. 白铅矿、菱锌矿晶体化学性质与硫化行为[J]. 广东有色金属学报, 1992(2): 83-88. |
LIANG Dongyun, ZHANG Zhixiong, XU Zhihua. Relation between the crystallochemical properties and sulphurized behaviours of cerussite and smithsonite[J]. Journal of Guangdong Non-Ferrous Metals, 1992(2): 83-88. | |
47 | CAI Jinpeng, LIU Dianwen, SHEN Peilun, et al. Effects of heating-sulfidation on the formation of zinc sulfide species on smithsonite surfaces and its response to flotation[J]. Minerals Engineering, 2021, 169: 106956. |
48 | SABO Mollie S, BECKINGHAM Lauren E. Porosity-permeability evolution during simultaneous mineral dissolution and precipitation[J]. Water Resources Research, 2021, 57(6): e2020WR029072. |
49 | 蔡锦鹏. 菱锌矿加温强化硫化机理研究[D]. 昆明: 昆明理工大学, 2019. |
CAI Jinpeng. Study on mechanism of intensified vulcanization of smithsonite by heating[D].Kunming: Kunming University of Science and Technology, 2019. | |
50 | 邱显扬, 李松平, 邓海波, 等. 菱锌矿加温硫化浮选动力学研究[J]. 有色金属(选矿部分), 2007(1): 24-26, 19. |
QIU Xianyang, LI Songping, DENG Haibo, et al. Study of heating surface sulfurized flotation dynamics of smithsonite[J]. Nonferrous Metals (Mineral Processing), 2007(1): 24-26, 19. | |
51 | 邱显扬, 李松平, 邓海波, 等. 菱锌矿加温硫化浮选药剂作用机理的研究[J]. 广东有色金属学报, 2006(4): 233-235. |
QIU Xianyang, LI Songping, DENG Haibo, et al. Study on the mechanism of reagent action in the process of heating surface sulferized flotation of smithsonite[J]. Journal of Guangdong Non-Ferrous Metals, 2006(4): 233-235. | |
52 | GUSH Jacqui. Flotation of oxide minerals by sulphidization - the development of a sulphidization control system for laboratory testwork[J]. Journal of the South African Institute of Mining and Metallurgy, 2005, 105: 193-198. |
53 | YANG Jing, CHEN Luzheng, WU Dandan, et al. Sodium sulfosalicylate activation mechanism on sulfidation flotation of smithsonite using dodecylamine as a collector[J]. Minerals Engineering, 2023, 192: 107987. |
54 | DUARTE Geraldo Magela Pereira, FERNANDES LIMA Rosa Malena. Quartz and hematite activation by Zn, Ca and Mg ions in the cationic flotation route for oxidized zinc ore[J]. Mineral Processing and Extractive Metallurgy Review, 2022, 43(6): 720-727. |
55 | WU Zhiqiang, TANG Xiaoqin, CHEN Jianhua, et al. Influence of hydrated Ca2+ and Mg2+ complexes on the sulfidization of smithsonite: Density functional based tight binding ( D F T B + ) study[J]. Physicochemical Problems of Mineral Processing, 2022: 58(6): 156040. |
56 | LUO Yuanjia, Leming OU, ZHANG Guofan, et al. Unveiling the role of Ca ion in the sulfidation of smithsonite: A density functional theory study[J]. Journal of Molecular Liquids, 2022, 367: 120485. |
57 | LIU Zhongyi, LIU Jie, LIAO Yinfei, et al. Effect of unavoidable ion (Ca2+) in pulp on the dispersion behavior of fine smithsonite[J]. Molecules, 2022, 27(24): 9026. |
58 | CHEN Yanfei, ZHANG Guofan, WANG Mengtao, et al. Utilization of sodium carbonate to eliminate the adverse effect of Ca2+ on smithsonite sulphidisation flotation[J]. Minerals Engineering, 2019, 132: 121-125. |
59 | DENG Rongdong, HU Yuan, KU Jiangang, et al. Adsorption of Fe(Ⅲ) on smithsonite surfaces and implications for flotation[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2017, 533: 308-315. |
60 | FENG Qicheng, ZHAO Guanghui, ZHANG Ga, et al. Degradation mechanism of surface hydrophobicity by ferrous ions in the sulfidization flotation system of smithsonite[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2022, 648:129119. |
61 | 刘长青. 氧化锌矿浮选体系金属离子对矿物浮选行为影响[D]. 徐州: 中国矿业大学, 2017. |
LIU Changqing. Effect of metal ion in zinc oxide ore flotation system on mineral flotation behavior[D].Xuzhou: China University of Mining and Technology, 2017. | |
62 | DENG Rongdong, WANG Yi, DUAN Wenting, et al. Induced crystallization of Pb2+ on smithsonite surface during sulfidation-xanthate flotation[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2022, 650: 129576. |
63 | LUO Bin, LIU Quanjun, DENG Jiushuai, et al. Determining the lead-sulfur species formed on smithsonite surfaces during lead-ion enhanced sulfidation processing[J]. Applied Surface Science, 2020, 506: 144628. |
64 | ZHANG Song, WEN Shuming, XIAN Yongjun, et al. Pb ion Pre-Modification enhances the sulfidization and floatability of smithsonite[J]. Minerals Engineering, 2021, 170: 107003. |
65 | 张松. 铅离子改性诱变硫化黄药浮选菱锌矿的机理研究[D]. 昆明: 昆明理工大学, 2020. |
ZHANG Song. Study on the mechanism of flotation of smithsonite with xanthate induced by lead ion modification[D].Kunming: Kunming University of Science and Technology, 2020. | |
66 | ZHAO Wenjuan, YANG Bin, LIU Dianwen, et al. Effect of copper ions on sulfidization flotation of smithsonite: Surface properties and adsorption mechanism[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2022, 650: 129515. |
67 | 蒋世鹏, 张国范, 常永强, 等. 金属离子对菱锌矿硫化浮选影响研究[J]. 有色金属(选矿部分), 2016(2): 23-28. |
JIANG Shipeng, ZHANG Guofan, CHANG Yongqiang, et al. Effect of metal ions on sulfiding flotation of smithsonite[J]. Nonferrous Metals (Mineral Processing Section), 2016(2): 23-28. | |
68 | 李来顺. 硫化—胺法浮选菱锌矿的理论与工艺研究[D]. 长沙: 中南大学, 2013. |
LI Laishun. Study on theory and technology of flotation of smithsonite by sulfide-amine method[D].Changsha: Central South University, 2013. | |
69 | 吴丹丹. 铵盐对菱锌矿强化硫化浮选理论研究[D]. 昆明: 昆明理工大学, 2015. |
WU Dandan. Theoretical study on enhanced sulfide flotation of smithsonite by ammonium salt[D].Kunming: Kunming University of Science and Technology, 2015. | |
70 | WU Dandan, MA Wenhui, WEN Shuming, et al. Contribution of ammonium ions to sulfidation-flotation of smithsonite[J]. Journal of the Taiwan Institute of Chemical Engineers, 2017, 78: 20-26. |
71 | FENG Qicheng, WEN Shuming, BAI Xu, et al. Surface modification of smithsonite with ammonia to enhance the formation of sulfidization products and its response to flotation[J]. Minerals Engineering, 2019, 137: 1-9. |
72 | BAI Shaojun, YU Pan, DING Zhan, et al. Ammonium chloride catalyze sulfidation mechanism of smithsonite surface: Visual MINTEQ models, ToF-SIMS and DFT studies[J]. Minerals Engineering, 2020, 146: 106115. |
73 | ZHANG Song, WEN Shuming, JIANG Yaxiong, et al. Determination of Pb sulfide formation on smithsonite surface in NH3-Pb-S aqueous solution system[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2022, 649: 129445. |
74 | ZHAO Wenjuan, WANG Meili, YANG Bin, et al. Enhanced sulfidization flotation mechanism of smithsonite in the synergistic activation system of copper-ammonium species[J]. Minerals Engineering, 2022, 187: 107796. |
75 | WU Dandan, MA Wenhui, WEN Shuming, et al. Enhancing the sulfidation of smithsonite by superficial dissolution with a novel complexing agent[J]. Minerals Engineering, 2017, 114: 1-7. |
76 | HE Kunzhong, ZHOU Hepeng, ZHANG Yongbing, et al. Enhancing flotation of smithsonite by using 1,3,5-triazinane-2,4,6-trithione as sulfidation[J]. Physicochemical Problems of Mineral Processing, 2021, 57(5): 1-14. |
77 | 陈瑶. 三聚硫氰酸强化氧化铅锌矿硫化浮选的机制研究[D]. 西安: 西安建筑科技大学, 2021. |
CHEN Yao. Study on mechanism of strengthening sulfide flotation of lead-zinc oxide by cyanuric acid[D]. Xi'an: Xi'an University of Architecture and Technology, 2021. |
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[5] | Mingbao LIU, Wanzhong GUO, Wanzhong YIN. Flotation mechanism of rutile in synergistic systems composed by sodium oleate and hydroxylamine-type reagents [J]. Chemical Industry and Engineering Progress, 2020, 39(8): 3362-3370. |
[6] | Bin HUANG, Chen WANG, Cheng FU, Siqiang FU, Likai HUANG, Weisen ZHANG. Research progress on treatment technologies of alkali/surfactant/polymer flooding produced water [J]. Chemical Industry and Engineering Progress, 2020, 39(10): 4238-4247. |
[7] | Yanyan XU,Wei LIU,Ting SHU,Na LI,Zhaoliang WU. Recovery of nano-sized TiO2 photocatalyst from its organic wastewater by using a technology of froth flotation coupled with ultrafiltration [J]. Chemical Industry and Engineering Progress, 2019, 38(10): 4773-4779. |
[8] | Chao SU, Peilun SHEN, Jialei LI, Jinpeng CAI, Siyan LIU, Yang CAO, Dianwen LIU. A review on depression and derepression of pyrite flotation [J]. Chemical Industry and Engineering Progress, 2019, 38(04): 1921-1929. |
[9] | Qianwei ZHANG,Qianqian SHI,Jianxin WU,Peiyue LI,Zhida CHANG. Preparation of low iron quartz by neutral direct flotation from iron oxide disseminated quartz [J]. Chemical Industry and Engineering Progress, 2019, 38(03): 1218-1225. |
[10] | SONG Kaiwei, LI Jialei, CAI Jinpeng, LIU Siyan, CAO Yang, SU Chao, LIU Dianwen. A review on surface sulfidization of typical copper/lead/zinc oxide minerals flotation [J]. Chemical Industry and Engineering Progress, 2018, 37(09): 3618-3628. |
[11] | SUN Yongchao, XIE Lixin, GAO Tingting, ZHOU Xiaokai. A study on different pretreatments process in sea water reverse osmosis (SWRO) desalination [J]. Chemical Industry and Engineering Progress, 2016, 35(11): 3658-3662. |
[12] | QIU Xianhui, YU Yang, ZHANG Chunju. Flotation kinetics of chalcopyrite and pyrite in tannic acid system [J]. Chemical Industry and Engineering Progree, 2016, 35(07): 2258-2262. |
[13] | CHENG Huaigang, ZHANG Xiaoxi, CHENG Fangqin. Strengthening flotation of potassium chloride using the ultrasonic pretreatment [J]. Chemical Industry and Engineering Progree, 2016, 35(05): 1321-1325. |
[14] | KONG Xianggong, CHEN Jiaqing, JI Yipeng, WANG Chunsheng, ZHANG Ming, SHANG Chao, CAI Xiaolei, LIU Meili. Numerical simulation of flow field and structural and operational parameters in a large capacity compact flotation unit(CFU) [J]. Chemical Industry and Engineering Progree, 2016, 35(03): 733-740. |
[15] | TANG Qing1,2,ZHONG Hong1,2,WANG Shuai1,2,PENG Jing1,2 . Research progress on the synthesis and application of hydroxamic acid compounds [J]. Chemical Industry and Engineering Progree, 2014, 33(03): 703-709. |
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