Zhengzhou Institute of Multipurpose Utilization of Mineral Resources, Chinese Academy of Geological SciencesHost
2020 Vol. 40, No. 4
Article Contents

Jifa DONG, Jianjun FANG, Ling ZHANG, Runhao ZHENG, Qingjun KOU. Research Progress of Electrolytic Flotation Technology in Beneficiation and Wastewater Treatment[J]. Conservation and Utilization of Mineral Resources, 2020, 40(4): 146-151. doi: 10.13779/j.cnki.issn1001-0076.2020.04.017
Citation: Jifa DONG, Jianjun FANG, Ling ZHANG, Runhao ZHENG, Qingjun KOU. Research Progress of Electrolytic Flotation Technology in Beneficiation and Wastewater Treatment[J]. Conservation and Utilization of Mineral Resources, 2020, 40(4): 146-151. doi: 10.13779/j.cnki.issn1001-0076.2020.04.017

Research Progress of Electrolytic Flotation Technology in Beneficiation and Wastewater Treatment

More Information
  • Electrolytic flotation technology is a method to obtain microbubbles by electrolyzing water based on the principle of electrolytic cell. It is characterized by the small diameter of the bubble produced by electrolysis, and has the advantages in fine particle flotation and wastewater treatment. With the prominent resources characteristics of poor, fine and miscellaneous and the enhancement of green chemical industry, the research and application of fine particle flotation, metal ion treatment in wastewater and oil-water separation will be widely concerned. This paper summarized the research progress of electrolytic flotation technology in the separation of oil and water, removal of heavy metal ions, solid-liquid separation of metal, non-metal, coal and other fine-grained materials and waste water, in order to further study the electrolytic flotation method and lay a foundation for its popularization and application.
  • 加载中
  • [1] 李振, 王纪镇, 印万忠, 等.细粒矿物浮选研究进展[J].矿产保护与利用, 2016(2):70-74.

    Google Scholar

    [2] PEASE J D, CURRY D C, YOUNG M F. Designing flotation circuits for high fines recovery[J]. Minerals engineering, 2005, (19): 831-840.

    Google Scholar

    [3] YOON R H, LUTTRELL G H. The effect of bubble size on fine particle flotation[J]. Mineral processing and extractive metallurgy review, 1989, 5(1-4): 101-122. doi: 10.1080/08827508908952646

    CrossRef Google Scholar

    [4] SARROT V, HUANG Z, LEGENDRE D, et al. Experimental determination of particles capture efficiency in flotation[J]. Chemical engineering science, 2007, 62(24): 7359-7369. doi: 10.1016/j.ces.2007.08.028

    CrossRef Google Scholar

    [5] 李志健, 付政辉.电气浮技术处理含油废水的研究进展[J].工业水处理, 2009, 29(10):5-8.

    Google Scholar

    [6] ELMORE F E. A process for separating certain constituents of subdivided ores and like substances, and apparatus therefore [P]. British, 1905.

    Google Scholar

    [7] 邓晓刚, 陈器, 廖振方.脉冲电浮法在矿物浮选中的应用理论研究[J].矿山机械, 2006, 34(4):66-67.

    Google Scholar

    [8] G. BHASKAR. RAJU, P. RKHANGAONKAR, 张学敏.微细粒黄铜矿的电解浮选[J].河北冶金, 1983(3):58-63, 68.

    Google Scholar

    [9] 陈繁忠, 李穗中.电解气浮法技术进展[J].广东化工, 1997(4):60-61.

    Google Scholar

    [10] 陈延禧, 龚允怡.用激光衍射法研究电解气泡的大小及其分布[J].化学学报, 1992, 50(10):967-972.

    Google Scholar

    [11] 汪朝晖, 廖振方, 陈德淑.电浮选过程中气泡行为的研究[J].中南大学学报(自然科学版), 2011(3):103-108.

    Google Scholar

    [12] 赵伟, 李振, 周安宁, 等.铝电极电浮选阴极的气泡特征及其影响因素研究[J].矿产保护与利用, 2018(3):87-92.

    Google Scholar

    [13] 周凌锋, 张强.气泡尺寸变化对微细粒浮选效果的研究[J].有色金属(选矿部分), 2005(3):21-23.

    Google Scholar

    [14] 贺国旭, 朱广东, 邵会波.电浮选法在处理含重金属离子废水中的应用[J].湿法冶金, 2011, 30(3):201-204.

    Google Scholar

    [15] 贺国旭, 张秋霞, 杨维春.电浮选方法在废水处理中的应用[J].净水技术, 2010(5):42-47.

    Google Scholar

    [16] 阳华玲, 朱超英, 易峦, 等.微细粒浮选柱的研究现状及其新进展[J].湖南有色金属, 2014, 30(5):11-16.

    Google Scholar

    [17] 佚名.含锡矿泥的电浮选[J].国外金属矿选矿, 1979(5):64.

    Google Scholar

    [18] WEI S, LIANG M, YUE H H, et al. Hydrogen bubble flotation of fine minerals containing calcium[J]. Mining science and technology (China), 2011, 21(4): 591-597. doi: 10.1016/j.mstc.2011.01.002

    CrossRef Google Scholar

    [19] 覃文庆, 王佩佩, 任浏祎, 等.颗粒气泡的匹配关系对细粒锡石浮选的影响[J].中国矿业大学学报, 2012, 41(3):420-424, 438.

    Google Scholar

    [20] 戴智飞, 黄红军, 孙伟, 等.电解浮选中气泡性质对细粒萤石回收的影响[J].化工矿物与加工, 2017, 46(5):9-12.

    Google Scholar

    [21] 马亮.浮选过程中含钙矿物颗粒与气泡的相互作用研究[D].长沙: 中南大学, 2011.

    Google Scholar

    [22] 李艳, 孙伟, 胡岳华.气泡性质对高岭石浮选行为的影响[J].中国有色金属学报, 2009, 19(8):1498-1504.

    Google Scholar

    [23] 马明芳.电化学浮选研究[J].能源技术与管理, 2019, 44(3):154-156.

    Google Scholar

    [24] 刘颖洲, 董宪姝, 代娟.电解浮选中气泡尺寸对精煤产率的影响[J].煤炭技术, 2014, 33(4):244-246.

    Google Scholar

    [25] 张翼, 于婷, 毕永慧, 等.含油废水处理方法研究进展[J].化工进展, 2008(8):22-28.

    Google Scholar

    [26] 曹伟丽, 王彦龙, 郭明, 等.采油污水的电气浮处理技术研究[J].应用化工, 2014(8):1547-1548.

    Google Scholar

    [27] 冯玉杰.电化学技术在环境工程中的应用[M].化学工业出版社, 2002.

    Google Scholar

    [28] 任连锁.电解一浮选法处理含油污水的研究[J].净水技术, 2005, 24(1):9-11.

    Google Scholar

    [29] 满春生, 孙福德.电解凝聚浮选法处理含油废水[J].重庆环境保护, 1987(2):11-14.

    Google Scholar

    [30] 王车礼, 张登庆, 陈毅忠, 等.电解絮凝浮选法处理油田废水[J].水处理技术, 2003(3):163-165.

    Google Scholar

    [31] 崔明玉, 王栋, 曹同川.絮凝-电气浮法处理乳化油废水[J].环境技术, 2005, 23(2):29-31.

    Google Scholar

    [32] 邵会波, S O VARAXIN, V A KOLESNIKOV, 等.电镀污水净化新工艺--电浮选方法简介[J].化学通报(印刷版), 2003, 66(12):837-842.

    Google Scholar

    [33] 许珂敬, 杨新春.新浮选技术在废水处理中的应用[J].矿产保护与利用, 1996(4):47-49, 57.

    Google Scholar

    [34] KOLESNIKOV V A, VARAKSIN S O, KRYUCHKOVA L A. Electroflotation extraction of valuable components from wash waters of electroplating works, with water recycling[J]. Russian journal of electrochemistry, 2001, 37(7):760-764. doi: 10.1023/A:1016737222354

    CrossRef Google Scholar

    [35] RAHMANI A R, NEMATOLLAHI D, GODINI K, et al. Continuous thickening of activated sludge by electro-flotation[J]. Separation & purification technology, 2013, 107:166-171.

    Google Scholar

    [36] 万晶, 陈金銮, 施汉昌.电解浮选用于活性污泥固液分离的正交实验研究[J].环境工程学报, 2007, 1(7):106-109.

    Google Scholar

    [37] 陈金銮, 万晶, 施汉昌.电解浮选用于活性污泥固液分离的研究[J].环境科学, 2006, 27(11):2333-2338.

    Google Scholar

    [38] 李良阁.电解浮选处理工业废水的应用[J].河南城建学院学报, 1993(1):10-13.

    Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Article Metrics

Article views(2219) PDF downloads(115) Cited by(0)

Access History

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint