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Synergistic degradation on aromatic cyclic organics of coal pyrolysis wastewater by lignite activated coke-active sludge process

机译:褐煤活化焦型污泥工艺协同循环煤热解废水芳香族循环物质

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摘要

In current study, the degradation of aromatic cyclic organics (ACOs) of coal pyrolysis wastewater (CPW) by lignite activated coke-active sludge (LAC-AS) process was investigated through the insight into synergistic effect of LAC and microbial community. As a contrast, the study on single AS process revealed that high phenols ( 200 mg.L-1) exerted irreversible toxicity by eliminating biomass. Meanwhile, quinoline and naphthalene exhibited joint inhibition with phenols on bio-community. Absence of functional genus and insufficient interspecific cooperation caused interrupted biological reaction, leading to degenerated ecosystem and vicious circle. However, LAC-AS performed synergistic degradation of ACOs, leading to developed ecosystems and benign substance metabolisms. Specifically, LAC alleviated toxicity on suspended AS by ACOs adsorption, and the facultative bacteria enriched by LAC exerted synergistic degradation in biochemical processes. Firstly, the bacteria on biofilm facilitated direct interspecies electron transfer for ring-cleavage reaction, and electroactive bacteria (Cloacibacterium, Hydrogenophaga and Stenotrophomonas) were critical for the process. Secondly, suspended AS further degraded ring-cleavage products, achieving the interspecific cooperation with biofilm. The synergistic nitrogen metabolism by different paths also contributed to the benign metabolic circulation.
机译:在目前的研究中,通过洞察Lac和微生物群落的协同作用,研究了卤化煤热解废水(CPW)的芳香环状有机物(CPW)的降解。作为对比,作为过程的单身研究表明,通过消除生物质,高酚(& 200 mg.L-1)施加不可逆的毒性。同时,喹啉和萘表现出与生物群落的苯酚关节抑制。没有功能性属和不足的间隙合作导致中断的生物反应,导致退化的生态系统和恶性循环。然而,LAC-如对ACOS进行协同降解,导致产生生态系统和良性物质代谢。具体而言,通过ACOS吸附的悬浮在悬浮的毒性,以及LAC富集的致力化细菌在生化过程中施加协同降解。首先,生物膜的细菌促进了用于环切割反应的直接梭菌电子转移,而电活性细菌(Cloacibacterium,氢气和牙科霉菌)对该过程至关重要。其次,暂停为进一步降解的环切割产品,实现与生物膜的三角合作。不同路径的协同氮代谢也有助于良性代谢循环。

著录项

  • 来源
    《Chemical engineering journal》 |2019年第2019期|共10页
  • 作者单位

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

    South China Agr Univ Sch Engn Guangzhou 510642 Guangdong Peoples R China;

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

    Harbin Inst Technol State Key Lab Urban Water Resource &

    Environm Harbin 150090 Heilongjiang Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    Synergistic degradation; LAC; Toxicity; Aromatic cyclic organics; Coal pyrolysis wastewater; Microbial community;

    机译:协同降解;LAC;毒性;芳香循环有机物;煤热解废水;微生物群落;

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