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规模化堆叠式微生物燃料电池的分析与改进。

Analysis and improvement of a scaled-up and stacked microbial fuel cell.

机构信息

Sub-Department of Environmental Technology, Wageningen University, 6700 EV Wageningen, The Netherlands.

出版信息

Environ Sci Technol. 2009 Dec 1;43(23):9038-42. doi: 10.1021/es901939r.

Abstract

Scaling up microbial fuel cells (MFCs) is inevitable when power outputs have to be obtained that can power electrical devices other than small sensors. This research has used a bipolar plate MFC stack of four cells with a total working volume of 20 L and a total membrane surface area of 2 m(2). The cathode limited MFC performance due to oxygen reduction rate and cell reversal. Furthermore, residence time distribution curves showed that bending membranes resulted in flow paths through which the catholyte could flow from inlet to outlet, while leaving the reactants unconverted. The cathode was improved by decreasing the pH, purging pure oxygen, and increasing the flow rate, which resulted in a 13-fold power density increase to 144 W m(-3) and a volumetric resistivity of only 1.2 mOmega m(3) per cell. Both results are major achievements compared to results currently published for laboratory and scaled-up MFCs. When designing a scaled-up MFC, it is important to ensure optimal contact between electrodes and substrate and to minimize the distances between electrodes.

摘要

当需要获得能够为除小型传感器以外的电气设备供电的功率输出时,扩大微生物燃料电池 (MFC) 是不可避免的。本研究使用了一个由四个电池组成的双极板 MFC 堆叠,总工作体积为 20 升,总膜表面积为 2 平方米。由于氧还原速率和电池反转,阴极限制了 MFC 的性能。此外,停留时间分布曲线表明,弯曲的膜导致了阴极电解液可以从入口流到出口的流动路径,而使反应物未转化。通过降低 pH 值、吹扫纯氧和增加流速来改善阴极,这导致功率密度增加了 13 倍,达到 144 W m(-3),每单元的体积电阻率仅为 1.2 mOmega m(3)。与目前发表的实验室和规模化 MFC 的结果相比,这两个结果都是重大成就。在设计规模化 MFC 时,重要的是要确保电极和基板之间的最佳接触,并最小化电极之间的距离。

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