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Modeling of parallel plate electrochemical reactors and liquid tin anode solid oxide fuel cells.

机译:平行板电化学反应器和液态锡阳极固体氧化物燃料电池的建模。

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摘要

Several industrial sites are now undergoing remediation to remove toxic waste that has managed to make it into the ecosystem. One way to remediate the toxic waste is to use electrochemical reactions to convert the toxic waste into a naturally occurring non toxic species through use of a parallel plate electrochemical reactor. A model is presented for the reduction of hexavalent chromium in a parallel plate electrochemical reactor via a homogenous reaction between chromium (VI) and iron (II) generated at the iron anode. The effects of the space velocity of the feed solution, the concentration of supporting electrolyte, the distance between the electrodes, and the cell potential on conversion of chromium (VI) to chromium (III) are addressed.;While remediation addresses how to deal with waste, it would be better if the amount of waste generated was minimized. One way to generate less waste is to increase the efficiency of converting chemical energy into electricity. Solid oxide fuel cells are capable of being twice as efficient at converting chemical energy into electricity as the standard coal fired power plants. Solid oxide fuel cells (SOFCs) can convert the chemical energy stored in hydrocarbon fuels directly into electricity bypassing the multiple energy transfers that normally occur, when hydrocarbon fuels are combusted to produce electricity. CellTech Power LLC has developed a liquid tin anode (LTA) SOFC that is sulfur tolerant. A 1-D model of the LTA-SOFC is presented which includes a porous cathode and the transient terms of the material balances. The results of this work indicate that the tortuosity of the cathode and the LSM layer should be as close to unity as possible, and that the porosity of the LSM should be between 0.4 and 0.8 while the porosity of the cathode should be 0.2. Additionally, a first principles analytical impedance model of the liquid tin anode solid oxide fuel cell anode half cell is presented and used to predict critical properties of the LTA-SOFC.
机译:现在有几个工业场所正在整治,以清除有毒废物,使之进入生态系统。补救有毒废物的一种方法是使用电化学反应,通过使用平行板电化学反应器将有毒废物转化为天然存在的无毒物种。提出了一种模型,用于通过在铁阳极上生成的铬(VI)和铁(II)之间的均相反应,在平行板电化学反应器中还原六价铬。讨论了进料溶液的空速,支持电解质的浓度,电极之间的距离以及电池电势对铬(VI)转化为铬(III)的影响。废物,将废物产生的量减到最少会更好。减少废物产生的一种方法是提高将化学能转化为电能的效率。固态氧化物燃料电池在将化学能转化为电能方面的效率是标准燃煤电厂的两倍。固态氧化物燃料电池(SOFC)可以将碳氢化合物燃料中存储的化学能直接转化为电能,从而绕过通常在燃烧碳氢燃料来发电时发生的多种能量传递。 CellTech Power LLC已开发出耐硫的液态锡阳极(LTA)SOFC。提出了LTA-SOFC的一维模型,其中包括一个多孔阴极和材料平衡的瞬态项。这项工作的结果表明,阴极和LSM层的曲折度应尽可能接近一体,并且LSM的孔隙度应在0.4至0.8之间,而阴极的孔隙度应为0.2。另外,提出了液态锡阳极固体氧化物燃料电池阳极半电池的第一原理分析阻抗模型,并将其用于预测LTA-SOFC的关键特性。

著录项

  • 作者

    Rayman, Sean.;

  • 作者单位

    University of South Carolina.;

  • 授予单位 University of South Carolina.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 240 p.
  • 总页数 240
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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