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Electrochemical studies of copper-activation of sphalerite and pyrite.

机译:闪锌矿和黄铁矿的铜活化的电化学研究。

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摘要

Carbon matrix composite (CMC) electrode and surface conducting (SC) electrode have been developed to study the copper-activation and the subsequent xanthate adsorption on insulating sphalerite. Fabricating CMC electrode involves embedding sphalerite particles in carbon to form a carbon matrix composite; and SC electrode is designed by contacting a platinum wire to the sphalerite surface. When these electrodes are activated by heavy metal ions such as copper, a conducting layer is formed on the mineral surfaces that allows dynamic electrochemical studies to be conducted.; Voltammetric studies on the copper activated CMC:ZnS electrodes in inert electrolytes show that although the activation product and kinetics may differ with pH, copper-activation occurs at all pH ranges. At acidic pH, a Cu 2S-like activation product was formed at open circuit. When activation was conducted at near neutral and alkaline pH at open circuit, the surface products formed were identified to be CuS-like. It was also established that the amount of copper uptaken by sphalerite is strongly dependent on the time of activation and on the electrochemical potential applied during activation. Activation at potentials positive of the rest potential decreases the amount of copper on the surface. Indeed, activation at potentials of 50 to 100 mV more positive of the rest potential in the activating solution completely inhibits copper activation. This result is consistent with the anodic stripping voltammetry that shows copper can be removed from the surface of sphalerite at oxidizing potentials. Activation at potentials mildly negative of the rest potential causes a progressive increase in the amount of copper on the surface, consistent with the diffusion controlled reduction process between ZnS and Cu2+ ions observed in the activating solution. At very low potentials, however, elemental copper is formed, which may worsen the selectivity of the sphalerite flotation. Controlled potential contact angle measurements showed that xanthate adsorption does occur on copper-activated sphalerite at all pH ranges. However, the contact angles and flotation recovery decrease at near neutral pH. This problem is caused by the adsorption of the copper-hydroxy species on the activated sphalerite surface. It was found that addition of small amount of complexing reagent can improve the flotation recovery at the near neutral pH.; The results obtained in the present work show that potential control of the activation process can provide a means of controlling copper uptake and, hence, the selectivity and recovery of sphalerite flotation. The development of CMC:ZnS and SC:ZnS electrodes provides a practical and reliable way to quantitatively estimate the amount of copper uptake on sphalerite surface after activation.
机译:已经开发出碳基复合材料(CMC)电极和表面导电(SC)电极,以研究铜活化以及随后的黄药对绝缘闪锌矿的吸附。制造CMC电极包括将闪锌矿颗粒嵌入碳中以形成碳基复合材料。 SC电极是通过使铂丝与闪锌矿表面接触而设计的。当这些电极被诸如铜之类的重金属离子活化时,在矿物表面上会形成一个导电层,从而可以进行动态电化学研究。对惰性电解液中铜活化的CMC:ZnS电极的伏安研究表明,尽管活化产物和动力学随pH值而不同,但铜活化在所有pH范围内都会发生。在酸性pH下,在开路时形成Cu 2S样活化产物。当在开路时在接近中性和碱性pH值下进行活化时,所形成的表面产物被鉴定为类似CuS。还已经确定,闪锌矿吸收的铜的量强烈地取决于活化时间和活化期间施加的电化学势。在静止电位为正的电位下激活会减少表面上的铜量。实际上,在活化溶液中比剩余电位高50到100 mV的正电位进行活化完全抑制了铜的活化。该结果与阳极溶出伏安法一致,该溶出伏安法表明可以在氧化电势下从闪锌矿表面除去铜。在静息电位略微为负的电位下活化会导致表面上铜的含量逐渐增加,这与活化溶液中ZnS和Cu2 +离子之间的扩散受控还原过程一致。然而,在非常低的电势下,会形成单质铜,这可能会使闪锌矿浮选的选择性恶化。受控电位接触角测量结果表明,在所有pH范围内,黄药均会在铜活化闪锌矿上发生吸附。但是,在接近中性pH值时,接触角和浮选恢复率会降低。该问题是由于活化的闪锌矿表面上羟基铜的吸附所致。发现添加少量的络合剂可以改善在接近中性pH值下的浮选回收率。在本工作中获得的结果表明,对活化过程的潜在控制可以提供一种控制铜吸收的方法,因此可以控制闪锌矿浮选的选择性和回收率。 CMC:ZnS和SC:ZnS电极的发展提供了一种实用,可靠的方法,可以定量地估计活化后闪锌矿表面上的铜吸收量。

著录项

  • 作者

    Chen, Zhuo.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Materials Science.; Engineering Mining.; Engineering Environmental.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;矿业工程;环境污染及其防治;
  • 关键词

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