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Long-term assessment of best cathode position to maximise microbial fuel cell performance in horizontal subsurface flow constructed wetlands

机译:长期评估最佳阴极位置,以在水平地下流动人工湿地中最大化微生物燃料电池的性能

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摘要

The cathode of microbial fuel cells (MFCs) implemented in constructed wetlands (CWs) is generally set in close contact with water surface to provide a rich oxygen environment However, water level variations caused by plants evapotranspiration in CWs might decrease MFC performance by limiting oxygen transfer to the cathode. Main objective of this work was to quantify the effect of water level variation on MFC performance implemented in HSSF CW. For the purpose of this work two MFCs were implemented within a HSSF CW pilot plant fed with primary treated domestic wastewater. Cell voltage (E_(cell)) and the relative distance between the cathode and the water level were recorded for one year. Results showed that E_(cell) was greatly influenced by the relative distance between the cathode and the water level, giving an optimal cathode position of about 1 to 2 cm above water level. Both water level variation and E_(cell) were daily and seasonal dependent, showing a pronounced dayight variation during warm periods and showing almost no daily variation during cold periods. Energy production under pronounced daily water level variation was 40% lower (80 ± 56 mWh/m~2·day) than under low water level variation (131 ± 61 mWh/m~2·day). Main conclusion of the present work is that of the performance of MFC implemented in HSSF CW is highly dependent on plants evapotranspiration. Therefore, MFC that are to be implemented in CWs shall be designed to be able to cope with pronounced water level variations.
机译:通常在人工湿地(CWs)中实施的微生物燃料电池(MFCs)的阴极与水面紧密接触,以提供丰富的氧气环境。但是,由于CWs中植物蒸散作用引起的水位变化可能会通过限制氧气转移而降低MFC的性能到阴极。这项工作的主要目的是量化水位变化对HSSF CW中实现的MFC性能的影响。出于这项工作的目的,在HSSF CW中试工厂中安装了两个MFC,并为其提供了初级处理的生活污水。记录电池电压(E_(cell))以及阴极与水位之间的相对距离,为期一年。结果表明,E_(cell)受阴极与水位之间的相对距离的影响很大,从而使阴极的最佳位置比水位高约1-2 cm。水位变化和E_(cell)均与日和季节有关,在温暖时期表现出明显的昼/夜变化,而在寒冷时期则表现出几乎无日变化。每天水位明显变化(80±56 mWh / m〜2·day)下的能量产生比低水位变化(131±61 mWh / m〜2·day)下的能量产生低40%。本工作的主要结论是在HSSF CW中实施的MFC的性能高度依赖于植物的蒸散量。因此,将在CW中实施的MFC的设计应能够应对明显的水位变化。

著录项

  • 来源
    《The Science of the Total Environment》 |2016年第1期|448-455|共8页
  • 作者单位

    GEMMA, Department Civil and Environmental Engineering, Universitat Politecnica de Catalunya-BarcelonaTech, c/Jordi Girona 1-3, Building D1, E-08034 Barcelona, Spain;

    GEMMA, Department Civil and Environmental Engineering, Universitat Politecnica de Catalunya-BarcelonaTech, c/Jordi Girona 1-3, Building D1, E-08034 Barcelona, Spain;

    GEMMA, Department Civil and Environmental Engineering, Universitat Politecnica de Catalunya-BarcelonaTech, c/Jordi Girona 1-3, Building D1, E-08034 Barcelona, Spain;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Microbial fuel cells; Constructed wetlands; Evapotranspiration; Cathode limitation; Energy production;

    机译:微生物燃料电池;人工湿地;蒸发蒸腾;阴极限制;能源生产;

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