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Optimizing the operating temperature for microbial electolysis cell treating sewage sludge

机译:优化微生物电解池处理污泥的操作温度

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Temperature is a very important parameter affecting the performance of microbial electrolysis cell (MEC). Generally, the activity of methanogens can be improved by operating at higher temperature, while electrochemically active bacteria (EAB) have the highest activity at around 30 degrees C. In this study, batch tests were performed to investigate the effect of temperature on the methane production and organic matter removal of MEC treating sewage sludge. As the temperature increased, the pH and alkalinity of digestate at the end of each cycle increased from 7.72 and 2055.5 mg CaCO3/L (at 30 degrees C) to 8.62 and 2804.9 mg CaCO3/L (at 40 degrees C) possibly due to the improved activity of methanogens. The VSS removal increased linearly from 35.1% to 45.8% by increasing the temperature from 30 degrees C to 40 degrees C, while COD removal was not significantly affected (<5%). The maximum methane yield and current density were 139.2 +/- 11.2 L CH4/kg VSSre and 1.63 +/- 0.11 A/m(3) at the temperature of 35 degrees C, which were higher than those obtained at 30 degrees C (136.6 +/- 10.9 L CH4/kg VSSre, 1.54 +/- 0.04 A/m(3)) and 40 degrees C (107.7 +/- 10.3 L CH4/kg VSSre, 1.23 0.16 A/m3). The current density generated from anode dropped by 23.5% when the operating temperature increased from 35 degrees C to 40 degrees C. These results indicate that the higher temperature of over 40 degrees C can inhibit the activity of EAB on the anode. In terms of the relationship between methane yield and current density, the higher current production could also enhance MPY owing to the improved electrochemical reaction (direct electron transfer from the cathode to the biofilm). (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:温度是影响微生物电解池(MEC)性能的非常重要的参数。通常,通过在较高温度下操作可以提高产甲烷菌的活性,而电化学活性细菌(EAB)在约30摄氏度时具有最高活性。在这项研究中,进行了分批测试以研究温度对甲烷产生的影响和MEC处理污水污泥的有机物去除。随着温度的升高,每个循环结束时消化液的pH值和碱度从7.72和2055.5 mg CaCO3 / L(在30摄氏度)增加到8.62和2804.9 mg CaCO3 / L(在40摄氏度)可能是由于提高产甲烷菌的活性。通过将温度从30摄氏度提高到40摄氏度,VSS去除率从35.1%线性增加到45.8%,而对COD去除的影响不明显(<5%)。在35摄氏度的温度下,最大甲烷产量和电流密度分别为139.2 +/- 11.2 L CH4 / kg V​​SSre和1.63 +/- 0.11 A / m(3),高于30摄氏度下的甲烷产量和电流密度(136.6) +/- 10.9 L CH4 / kg V​​SSre,1.54 +/- 0.04 A / m(3))和40摄氏度(107.7 +/- 10.3 L CH4 / kg V​​SSre,1.23 0.16 A / m3)。当工作温度从35摄氏度增加到40摄氏度时,阳极产生的电流密度下降了23.5%。这些结果表明,超过40摄氏度的较高温度可以抑制EAB在阳极上的活性。就甲烷收率和电流密度之间的关系而言,由于电化学反应的改善(从阴极到生物膜的直接电子转移),更高的电流产量也可以提高MPY。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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