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Modeling of direct carbon-assisted solid oxide electrolysis cell (SOEC) for syngas production at two different electrodes

机译:直接碳辅助固体氧化物电解槽(SOEC)在两个不同电极上生产合成气的模型

摘要

Syngas can be produced from H2O/CO2 co-electrolysis using an SOEC. However, H-2 and CO are both produced in the cathode and the electricity consumption is large. In this paper, direct carbon-assisted SOEC for H2O electrolysis (DC-SOFEC) is proposed for cogenerating electricity power and syngas with easy control of H-2/CO ratio. A 2D numerical model is developed to study the effects of operating and design parameters on the DC-SOFEC performance. The model is validated with experimental data for direct carbon solid oxide fuel cell. One important finding is that the carbon assisting is effective in lowering the equilibrium potential of SOEC, thus greatly reduces the electrical power consumption for H2O electrolysis. The DC-SOFEC can generate electrical power, CO and H-2 simultaneously at a low current density and sufficiently high temperature. Compared with conventional SOEC for H2O/CO2 co-electrolysis, DC-SOFEC is advantageous as CO and H-2 are produced in the anode and cathode, respectively. This enables easy control of H-2/CO ratio, which is helpful for subsequent processes to synthesize other chemicals or fuels from syngas. Besides, DC-SOFEC can actually produce electricity rather than consuming it. The model can be used for subsequent design optimization of SOFEC for effective energy storage and conversion.
机译:可以使用SOEC通过H2O / CO2共电解产生合成气。然而,H-2和CO都在阴极中产生,并且耗电量大。本文提出了一种直接的碳辅助SOEC用于H2O电解(DC-SOFEC)来联产电力和合成气,同时易于控制H-2 / CO的比率。开发了一个二维数值模型来研究操作和设计参数对DC-SOFEC性能的影响。该模型已通过直接碳固体氧化物燃料电池的实验数据验证。一个重要的发现是碳助剂可有效降低SOEC的平衡电位,从而大大降低了H2O电解的电能消耗。 DC-SOFEC可以在低电流密度和足够高的温度下同时产生电能,CO和H-2。与用于H2O / CO2共电解的常规SOEC相比,DC-SOFEC的优势在于,CO和H-2分别在阳极和阴极产生。这样可以轻松控制H-2 / CO的比例,这对于后续工艺从合成气中合成其他化学品或燃料很有帮助。此外,DC-SOFEC实际上可以发电而不是消耗电能。该模型可用于SOFEC的后续设计优化,以实现有效的能量存储和转换。

著录项

  • 作者

    Xu HR; Chen B; Ni M;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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