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Bioelectrochemical enhancement of methane production in low temperature anaerobic digestion at 10 degrees C

机译:在10摄氏度的低温厌氧消化中提高甲烷生成量的生物电化学

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摘要

Anaerobic digestion at low temperature is an attractive technology especially in moderate climates, however, low temperature results in low microbial activity and low rates of methane formation. This study investigated if bioelectrochemical systems (BESs) can enhance methane production from organic matter in low-temperature anaerobic digestion (AD). A bioelectrochemical reactor was operated with granular activated carbon as electrodes at 10 degrees C. Our results showed that bioelectrochemical systems can enhance CH4 yield, accelerate CH4 production rate and increase acetate removal efficiency at 10 degrees C. The highest CH4 yield of 31 mg CH4-COD/g VSS was achieved in the combined BES-AD system at a cathode potential of 0.90 V (Ag/AgCI), which was 5.3-6.6 times higher than that in the AD reactor at 10 degrees C. CH4 production rate achieved in the combined BES-AD system at 10 degrees C was only slightly lower than that in the AD reactor at 30 degrees C. The presence of an external circuit between the acetate-oxidizing bioanode and methane-producing cathode provided an alternative pathway from acetate via electrons to methane, potentially via hydrogen. This alternative pathway seems to result in higher CH4 production rates at low temperature compared with traditional methanogenesis from acetate. Integration of BES with AD could therefore be an attractive alternative strategy to enhance the performance of anaerobic digestion in cold areas. (C) 2016 Elsevier Ltd. All rights reserved.
机译:低温厌氧消化是一项有吸引力的技术,特别是在中等气候下,但是,低温导致微生物活性降低和甲烷形成速率降低。这项研究调查了生物电化学系统(BESs)是否可以提高低温厌氧消化(AD)中有机物的甲烷产量。在10摄氏度下以颗粒状活性炭为电极运行生物电化学反应器。我们的结果表明,在10摄氏度下,生物电化学系统可以提高CH4产量,加快CH4生成速率并提高乙酸盐去除效率。CH4最高产量为31 mg CH4-在BES-AD组合系统中,阴极电势为0.90 V(Ag / AgCI)时,可实现COD / g VSS,这是AD反应器在10摄氏度时的电势的5.3-6.6倍。结合的BES-AD系统在10摄氏度时仅略低于AD反应器中在30摄氏度时的系统。乙酸盐氧化生物阳极与甲烷生成阴极之间存在外部电路,为乙酸盐通过电子到达电子的另一种途径甲烷,可能通过氢气。与传统的乙酸甲烷生成相比,这种替代途径似乎导致低温下更高的CH4生成速率。因此,将BES与AD整合可能是增强寒冷地区厌氧消化性能的一种有吸引力的替代策略。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Water Research》 |2016年第1期|281-287|共7页
  • 作者单位

    Wageningen Univ, Subdept Environm Technol, Bornse Weilanden 9,POB 8129, NL-6709 WG Wageningen, Netherlands;

    Wageningen Univ, Subdept Environm Technol, Bornse Weilanden 9,POB 8129, NL-6709 WG Wageningen, Netherlands;

    Wageningen Univ, Subdept Environm Technol, Bornse Weilanden 9,POB 8129, NL-6709 WG Wageningen, Netherlands;

    Wageningen Univ, Subdept Environm Technol, Bornse Weilanden 9,POB 8129, NL-6709 WG Wageningen, Netherlands;

    Wageningen Univ, Subdept Environm Technol, Bornse Weilanden 9,POB 8129, NL-6709 WG Wageningen, Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Anaerobic digestion; Bioelectrochemical system; Low temperature; Methane; Methanogenic activity;

    机译:厌氧消化;生物电化学系统;低温;甲烷;产甲烷活性;
  • 入库时间 2022-08-17 13:41:54

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