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首页> 外文期刊>The Science of the Total Environment >Comparison of long-term energy efficiency and microbial community dynamics of different reactors in response to increased loadings of water hyacinth juice
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Comparison of long-term energy efficiency and microbial community dynamics of different reactors in response to increased loadings of water hyacinth juice

机译:不同反应器的长期能量效率和微生物群体动态的比较响应水葫芦汁载荷增加

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摘要

Water hyacinth is considered to be among the worst invasive weed species globally, causing detrimental environmental and social problems worldwide. It rapidly grows, and therefore has significant potential as a resource. Due to its high moisture content (approximately 95%), the by-product obtained by dehydrating water hyacinth yields a considerable amount of water hyacinth juice (WHJ). In this study, we performed a comparative assessment of long-term energy efficiency, maximum treatment capacity limits, and microbial community dynamics of modified internal circulation (MIC) and up-flow anaerobic sludge blanket (UASB) reactors in response to increasing loadings of WHJ. The MIC reactor exhibited a higher energy recovery rate and stronger performance compared with the UASB reactor. The optimal organic loading rates of the MIC and UASB reactors were 17.93 and 8.85 kg chemical oxygen demand (COD)/m~3/d, with methane conversion rates of 0.21 and 0.15 m~3 CH_4/kg COD, respectively. Furthermore, the engineering costs and project floor space required by the MIC reactor are less than those in the case of the UASB reactor. The high-throughput sequencing analysis indicated that the dominant phyla (e.g. Firmicutes and Bacteroidetes) were more abundant using the MIC reactor than with the UASB reactor, which may indicate WHJ degradation efficiency. Both reactors had similar predominant methanogens, suggesting that acetoclastic methanogenesis was the predominant metabolic pathway of methane formation. The results of this study provide new insights into the sustainable management of water hyacinth as a resource by establishing a regional ecosystem with biogas engineering applications.
机译:水葫芦被认为是全球最严重的侵袭性杂草物种,造成全世界有害的环境和社会问题。它迅速增长,因此具有重要潜力作为资源。由于其高水分含量(约95%),通过脱水水葫芦获得的副产物产生了相当大量的水葫芦汁(WHJ)。在本研究中,我们对改进的内循环(MIC)和上流厌氧污泥毯(UASB)反应器的长期能量效率,最大处理能力限制和微生物群体动态进行了比较评估,响应于WHJ的载荷增加。与UASB反应器相比,MIC反应器表现出更高的能量回收率和更强的性能。 MIC和UASB反应器的最佳有机加载率为17.93和8.85千克化学需氧量(COD)/ m〜3 / d,分别具有0.21和0.15m〜3 CH_4 / kg COD的甲烷转化率。此外,MIC反应器所需的工程成本和项目地板空间小于UASB反应器的情况下的设备。高通量测序分析表明,使用MIC反应器比与UASB反应器更丰富的优势Phyla(例如,骨骼和拟杆菌),其可以指示WHJ降解效率。两种反应器具有类似的主要甲烷酮,表明乙酰型甲基甲烷是甲烷形成的主要代谢途径。本研究的结果通过建立具有沼气工程应用的区域生态系统,为水合风信的可持续管理提供了新的见解。

著录项

  • 来源
    《The Science of the Total Environment》 |2020年第20期|140812.1-140812.11|共11页
  • 作者单位

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China Jilin Dongsheng Institute of Biomass Energy Engineering Tonghua 134118 PR China DongMing Agriculture and Animal Husbandry Development (Croup) Co. LTD Tonghua 134118 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China Jilin Dongsheng Institute of Biomass Energy Engineering Tonghua 134118 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China Jilin Dongsheng Institute of Biomass Energy Engineering Tonghua 134118 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China;

    Yunnan Research Center of Biogas Technology and Engineering School of Energy and Environment Science Yunnan Normal University Kunming 650500 PR China Engineering and Research Center of Sustainable Development and Utilization of Bioenergy Ministry of Education Yunnan Normal University Kunming 650500 PR China Jilin Dongsheng Institute of Biomass Energy Engineering Tonghua 134118 PR China DongMing Agriculture and Animal Husbandry Development (Croup) Co. LTD Tonghua 134118 PR China;

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

    Water hyacinth juice; Up-flow anaerobic sludge blanket; Modified internal circulation; Long-term performance; Maximum treatment capacity limits; Energy recovery efficiency;

    机译:水葫芦汁;上流厌氧污泥毯;改性内部循环;长期表现;最大处理能力限制;能量回收效率;

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