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The effects of electrode spacing and flow direction on the performance of microbial fuel cell-constructed wetland

机译:电极间距和流向对微生物燃料电池人工湿地性能的影响

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This study explores the potential to integrate microbial fuel cells (MFCs) into constructed wetlands (CWs) to concomitantly achieve power generation and advanced wastewater treatment with minimal construction and operating costs. Four 8.1 L CWs incorporating MFC with different architectures/flow regimes were constructed to simultaneously treat swine wastewater while determining the best method to maximize the achievable power in CW-MFCs system. By placing the cathode at the air-water interface and burying the anode at a depth of 0.4 m the amount of dissolved oxygen (DO) at the cathode area is increased while ensuring the anode remains anoxic. By keeping the anode buried and placing the cathode directly above, the ohmic resistance is reduced. More significantly, when this arrangement was run with simultaneous upflow into the anode and downflow into the cathode, a maximum power of 0.276 W/m(3) was generated. Thus the optimal configuration for scaling up study is obtained. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项研究探索了将微生物燃料电池(MFCs)集成到人工湿地(CW)中的潜力,从而以最小的建设和运营成本实现发电和先进的废水处理。构造了四台结合了具有不同结构/流量方案的MFC的8.1 ​​L CW,以同时处理猪废水,同时确定了使CW-MFCs系统中可实现的功率最大化的最佳方法。通过将阴极置于空气-水界面并将阳极埋入0.4 m的深度,可增加阴极区域的溶解氧(DO)量,同时确保阳极保持缺氧状态。通过保持阳极埋入并将阴极直接置于上方,可以降低欧姆电阻。更重要的是,当在同时向上流入阳极和向下流入阴极的情况下运行该装置时,产生的最大功率为0.276 W / m(3)。因此,获得了扩大规模研究的最佳配置。 (C)2015 Elsevier B.V.保留所有权利。

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