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首页> 外文期刊>Science of the total environment >Efficiency and key functional genera responsible for simultaneous methanation and bioelectricity generation within a continuous stirred microbial electrolysis cell (CSMEC) treating food waste
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Efficiency and key functional genera responsible for simultaneous methanation and bioelectricity generation within a continuous stirred microbial electrolysis cell (CSMEC) treating food waste

机译:负责在连续搅拌的微生物电解细胞(CSMEC)内同时甲烷化和生物电性产生的效率和关键功能属性治疗食物废物

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摘要

This study reveals the efficient treatment of high strength food waste under varying hydraulic retention times (48 h, 36 h and 24 h) in a continuous stirred tank reactor (CSTR) integrated with microbial electrolysis cell (MEC) to become a continuous stirred microbial electrolysis cell (CSMEC). COD removal efficiency in the CSMEC surpassed 92% with OLR ranging from 0.4 to 21.31 kg COD/m~3·d compared to that of the CSTR. The maximum current density (based on the cathode surface area) was 1125.35 ± 81 mA/m~2 in the CSMEC. Biogas yield and methane production rates increased by 16.5% and 19.3% in the CSMEC respectively compared to the CSTR. CSMEC was 1.52 times better in performance compared to the CSTR. Firmicutes, Synergistetes, Bacteroidetes, Thermotogae, Chloroflexi and Proteobacteria were the dominant phyla associated with both CSMEC and CSTR. Archaeal microbial community analysis showed Methanosaeta, Methanobacterium, Methanosarcina and Methanocorpusculum as the dominant populations associated with the CSMEC.
机译:本研究揭示了在与微生物电解细胞(MEC)一体化的连续搅拌釜反应器(CSTR)中改变水力保留时间(48小时,36小时和24小时)的高强度食品废物的高强度食物垃圾,以成为连续搅拌的微生物电解细胞(CSMEC)。 CSMEC中的COD去除效率超过了92%,OLR与CSTR的OLR为0.4至21.31 kg COD / m〜3·d。在CSMEC中,最大电流密度(基于阴极表面积)为1125.35±81 mA / m〜2。与CSTR相比,沼气产量和甲烷的产量分别在CSMEC中增加了16.5%和19.3%。与CSTR相比,CSMEC在性能方面的1.52倍。 Formalutes,Synergistetes,Broctoidetes,ThermotoGae,氯倍乱和植物是与CSMEC和CSTR相关的主要植物。古群微生物群落分析显示甲烷鎓,甲基杆菌,甲蛋白酶和甲烷过量刺激作为与CSMEC相关的主要群体。

著录项

  • 来源
    《Science of the total environment》 |2021年第25期|143746.1-143746.10|共10页
  • 作者单位

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China Nuclear Application Centre (NAC) National Nuclear Research Institute (NNRI) Ghana Atomic Energy Commission (GAEC) P.O. Box LG 80 Legon Ghana;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

    Jiangxi Key Laboratory of Mining & Metallurgy Environmental Pollution Control School of Resources and Environmental Engineering Jiangxi University of Science and Technology Ganzhou 341000 China;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

    State Key Laboratory of Urban Water Resource and Environment School of Environment Harbin Institute of Technology Harbin 150090 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Food waste; Anaerobic digestion; Methane production; Microbial electrolysis cell; Microbial community;

    机译:食物垃圾;厌氧消化;甲烷生产;微生物电解细胞;微生物群落;

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