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Novel Methanogemc Rotatable Bioelectrochemical System Operated with Polarity Inversion

机译:具有极性反转的新型甲烷甲烷可旋转生物电化学系统

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摘要

A novel membraneless bioelectrochemical system termed rotatable bioelectrochemical contactor (RBEC) was fabricated and evaluated for its ability to recover useful energy (here methane) from a low organic strength wastewater. We studied the operational characteristics of the RBEC by operating it as a three-electrode electrolysis cell. A stack of conductive disks (each subdivided into two half disks), similar to rotating biological contactors, were rotated with one-half disk immersed in the wastewater and the other into the gas headspace. By carrying out regular half rotatrons(180°rotation)the anode became the cathode and vice versa. This operation resulted in the buildup of a biofilm that could catalyze both an anodic acetate oxidation and a cathode-driven methanogenesis. Methane production rate was directly proportional to the applied electrical energy. Increase in current density (from 0.16 to 4.1 A m~(-2)) resulted in a faster COD removal (from 0.2 to 1.38 kg COD m ~(-3) day~(-1)) and methane production (from 0.04 to 0.53 L L~(-1) day~(-1)). Of the electrons flowing across the circuit over 80% were recovered as methane. Such methane production was electrochemically driven by the headspace-exposed cathodic half disks, which released the methane directly to the gas-phase. Energy analysis shows that the new design requires less energy for COD removal than what is typically required for oxygen supply in activated sludge processes. Because the system could operate without wastewater recirculation against gravity; additional pH buffer chemicals; ion-exchange membranes or electrochemical catalysts, it has desirable characteristics for process up-scale. Further, the current report shows the first example of a BES with identical biofilm (due to intermittent polarity inversion) on both electrodes.
机译:制造了一种新型的无膜生物电化学系统,称为可旋转生物电化学接触器(RBEC),并对其从低有机强度废水中回收有用能量(此处为甲烷)的能力进行了评估。我们通过将RBEC用作三电极电解槽来研究其运行特性。类似于旋转的生物接触器,将一堆导电盘(每个细分成两个半盘)旋转,其中一半的盘浸入废水中,另一半浸入气体顶空。通过进行常规的半旋转(180°旋转),阳极变成阴极,反之亦然。该操作导致生物膜的形成,该生物膜既可以催化阳极乙酸盐的氧化,又可以催化阴极驱动的甲烷生成。甲烷生产率与所施加的电能成正比。电流密度的增加(从0.16 Am〜(-2)从4.1A增加到4.1A m〜(-2))和更快的COD去除(从0.2至1.38 kg COD m〜(-3)天〜(-1))和甲烷生成(从0.04至0.53 LL〜(-1)天〜(-1))。流经电路的电子中有80%以上被回收为甲烷。这种甲烷的产生是由暴露于顶空的阴极半圆盘以电化学方式驱动的,该半圆盘将甲烷直接释放到气相中。能源分析表明,与活性污泥工艺中供氧通常所需的能源相比,新设计所需的COD去除能源更少。因为该系统可以在不因重力而使废水再循环的情况下运行;其他pH缓冲剂;离子交换膜或电化学催化剂,对于工艺规模化具有理想的特性。此外,本报告显示了两个电极上具有相同生物膜(由于间歇性极性反转)的BES的第一个示例。

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  • 来源
    《Environmental Science & Technology》 |2011年第2期|p.796-802|共7页
  • 作者单位

    Faculty of Sustainability, Environmental and Life Sciences, Murdoch University, WA6150, Australia,Commonwealth Scientific and Industrial Research Organization, CSIRO Land and Water, Floreat, Perth WA6014, Australia;

    rnFaculty of Sustainability, Environmental and Life Sciences, Murdoch University, WA6150, Australia;

    rnFaculty of Sustainability, Environmental and Life Sciences, Murdoch University, WA6150, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-17 14:03:35

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