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Investigation of nitrogen pollutants transformation and its pathways along the long-distance prechlorinated raw water distribution system

机译:氮污染物转化及其沿远距离原水分配系统的途径研究

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摘要

Understanding the transformation pattern of nitrogen (N) pollutants and its pathways in the prechlorinated raw water distribution system (PRWDS) is vital for controlling the stablitiy and safety of raw water qulity. This study investigated the N transformation, N functional genes and their correlations to find the N transformation pathways along the PRWDS. Results suggested that simultaneous nitrification, anaerobic ammonium oxidation and denitrification (SNAD) contribute to the N transformationin the PRWDS. Along the pipeline, anammox 16S rRNA (9.18 x 10(7)-8.41 x 10(8) copies/g), limited by prechlorination, was the most abundant N functional genes and anammox process was the main pathway of ammonia nitrogen (NH4+-N). The decreasing NH4+-N was connected with Planctomycetes, Nitrospira and abundance of nxrA attributing to the joint effort of anammox and declined nitrification. The concentration of nitrate (NO3--N) increasing at first and then decreasing, was correlated positively with Sphingomonas. because of the declined nitritication and increased denitrification. Besides, the NO3--N - NO2--N process was considered to be primary NO3--N transformation pathways. Increases in the concentration of dissolved organic nitrogen (DON) and nitrite (NO2--N) observed in the PRWDS had positive correlation with relative abundance of Pseudomonas. We believe that prechlorination shaped the particular bacterialcharacteristics in biofllms and influenced the N transformation pathways indirectly, resulting in the varying N transformation rules in PRWDSs. Moreover, systematic and extended research is particularly vital for determining the effects of changes in source water quality and environmental conditions on bacterial community structure and N conversion along PRWDSs. (C) 2020 Published by Elsevier Ltd.
机译:理解氮气(N)污染物的转化模式及其在预替代的原水分配系统(PRW​​DS)中的途径对于控制原水Qulity的稳压和安全性至关重要。本研究研究了N转化,N官能基因及其相关性,以找到沿PRWDS的N变换途径。结果表明,同时硝化,厌氧氧化和反硝化(蛇醛)有助于N转化素。沿着管道,厌氧16s rRNA(9.18×10(7)-8.41×10(8)拷贝/ g),通过预氯化有限,是最丰富的n个功能基因和厌氧过程是氨氮的主要途径(NH4 + - n)。降低NH4 + -N与Parenctomycetes,Nitrospira和NXRA的丰富,归因于厌氧毒剂并下降硝化。首先硝酸盐(NO 3 -N)浓度随后逐渐降低,与鞘氨胺呈正相关。由于贫困均下降和脱硝化增加。此外,NO3 - N - > NO2-N过程被认为是初级NO3 - N变换途径。在PRWDS中观察到的溶解有机氮(DON)和亚硝酸盐(NO 2 -N)的浓度增加与伪芽孢杆菌的相对丰度呈正相关。我们认为,在BiofllMMS中形成甲状腺细胞,间接影响N变化途径,导致PRWDS的变化规则变化。此外,系统和扩展的研究对于确定源水质变化和环境条件对细菌群落结构的影响和沿普遍术语的转换尤为至关重要。 (c)2020由elestvier有限公司发布

著录项

  • 来源
    《Chemosphere》 |2020年第9期|126833.1-126833.10|共10页
  • 作者单位

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China|Wanjiang Univ Technol Maanshan 243031 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Chuzhou Univ Coll Civil & Architechure Engn 1 West Huifeng Rd Chuzhou 239000 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Hohai Univ Coll Environm Key Lab Integrated Regulat & Resource Dev Shallow Minist Educ 1 Xikang Rd Nanjing 210098 Peoples R China;

    Chuzhou Univ Coll Civil & Architechure Engn 1 West Huifeng Rd Chuzhou 239000 Peoples R China;

    Hohai Univ State Key Lab Hydrol Water Resources & Hydraul En Nanjing Peoples R China;

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

    Prechlorinated raw water distribution system (PRWDS); Nitrogen transformation; Nitrogen functional genes; Simultaneous nitrification; Anaerobic ammonium oxidation and denitrification (SNAD);

    机译:预批化的原水分配系统(PRW​​DS);氮转化;氮功能基因;同时硝化;厌氧氧化和反硝化(斯堪);

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