电解活性氢气微泡浮选微细粒石墨的研究
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武汉理工大学 关键非金属矿产资源绿色利用教育部重点实验室,武汉 430070

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Study on the Flotation of Ultrafine Graphite in Activated Hydrogen Microbubbles
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Key Laboratory of Green Utilization of Critical Non-metallic Mineral Resources,Ministry of Education,Wuhan University of Technology,Wuhan 430070,China

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    摘要:

    电解活性氢气微泡是通过电解水原位产生表面荷电的微纳米气泡,其阴极产生的氢气气泡具有化学活性强、表面活性高和气泡粒径小的特点,称为“活性氢气微泡”。研究考察了电解工艺参数(电解质类型、浓度、电流、电极材料)以及起泡剂对活性氢气微泡产生(气量和粒径分布)的影响,设计并组装了原位电解浮选装置,开展了活性氢气微泡浮选微细粒石墨的试验研究。结果表明,经过调控的活性氢气微泡有较理想的微泡粒径分布:-10 μm 气泡占 36%,10~20 μm 气泡占 58%;与传统电解浮选相比,活性氢气微泡浮选显著提高微细粒石墨回收率。通过测量表面张力、包覆角、Zeta 电位和 FT-IR,研究了活性氢气微泡-药剂-石墨的相互作用。结果表明电解活性氢气微泡强化微细粒石墨浮选的主要原因在于活性微泡可以降低石墨表面电位,减弱颗粒间的静电斥力,改善气泡与矿物的附着从而提高碰撞概率。

    Abstract:

    Traditional electrolytic flotation uses iron mesh as electrodes for the flotation of fine-grainedminerals. The neglect of bubble property control and the mixing of hydrogen and oxygen have prevented theaccurate assessment of the key mechanisms governing the recovery of fine-grained minerals. By separating gases,electrolytically active hydrogen microbubbles can be generated in situ. These bubbles are characterized by a hydrogenatmosphere,high surface activity,and small bubble size. This study investigated the regulatory processes of activehydrogen microbubble gas production and particle size under varying electrolytic process parameters (electrolyte type,concentration,current),electrode material density,and foaming agent (type and addition amount). The optimal gasproduction conditions were applied to experimental studies on the flotation of microfine graphite particles using activehydrogen microbubbles. Experimental results indicated that the catalyst prepared using 1 mol/L Na2SO4 and a 90 ppisubstrate could achieve optimal gas production and bubble size at a current of 1 A,while -10 μm bubbles accountfor 36%,and 10-20 μm bubbles account for 58%. The types and concentrations of electrolytes,current intensity,electrode material density,and foaming agents regulated the surface properties of hydrogen microbubbles and theirgrowth and desorption through the ionic environment,electrochemical driving force,microbubble interaction forces,and microbubble surface tension. Compared with traditional electrolytic flotation,active hydrogen microbubbleswith smaller particle size and higher surface activity could effectively recover micro graphite particles ranging from 1to 11 microns in size and significantly improved the recovery rate of micro graphite. The interaction between activehydrogen gas microbubbles,reagents,and graphite was investigated by measuring surface tension,contact angle,Zeta potential,and FT-IR. The results indicated that the essence of electrolytic active hydrogen microbubble-enhanced fine-grained graphite flotation lied in the regulation of the gas-reagent-mineral interface by active hydrogen microbubbles. Electrolytic active hydrogen microbubbles reduced the electrostatic repulsion between graphite particlesand enhanced hydrophobicity. The addition of collectors formed a stable hydrophobic coating on the graphite surface,further enhancing the adhesion between active hydrogen microbubbles and graphite. Therefore,the strategy proposedin this study for regulating the gas production rate and bubble size of active hydrogen microbubbles can effectivelyimprove the flotation recovery rate of fine-grained graphite by adjusting the surface activity of active hydrogenmicrobubbles. It also provides new insights for the electrolytic flotation recovery of fine-grained minerals.

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陈凤,练伟,曾龙颜,宋少先,贾菲菲.电解活性氢气微泡浮选微细粒石墨的研究[J].有色金属(选矿部分),2025(9):145-154.CHEN Feng, LIAN Wei, ZENG Longyan, SONG Shaoxian, JIA Feifei.Study on the Flotation of Ultrafine Graphite in Activated Hydrogen Microbubbles[J].Nonferrous Metals(Mineral Processing Section),2025(9):145-154.

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  • 在线发布日期:2025-11-05
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