菌剂强化潜流湿地总氮总磷去除及功能菌特性

陈晶, 张敏特, 陈萍, 邓文, 周新程, 张文艺. 菌剂强化潜流湿地总氮总磷去除及功能菌特性[J]. 环境化学, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
引用本文: 陈晶, 张敏特, 陈萍, 邓文, 周新程, 张文艺. 菌剂强化潜流湿地总氮总磷去除及功能菌特性[J]. 环境化学, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
CHEN Jing, ZHANG Minte, CHEN Ping, DEN Wen, ZHOU Xincheng, ZHANG Wenyi. Nitrogen and phosphorus removal and characteristics of functional microbes in subsurface flow wetland with microbe augmentation[J]. Environmental Chemistry, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
Citation: CHEN Jing, ZHANG Minte, CHEN Ping, DEN Wen, ZHOU Xincheng, ZHANG Wenyi. Nitrogen and phosphorus removal and characteristics of functional microbes in subsurface flow wetland with microbe augmentation[J]. Environmental Chemistry, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902

菌剂强化潜流湿地总氮总磷去除及功能菌特性

  • 基金项目:

    "

    十二五"

    国家水体污染控制与治理科技重大专项(2012zx07301-001)

    国家自然科学基金(41571471)

    常州市科技支撑计划资助.

Nitrogen and phosphorus removal and characteristics of functional microbes in subsurface flow wetland with microbe augmentation

  • Fund Project:
  • 摘要: 从活性污泥中筛选的1株具有高效反硝化能力的聚磷菌B8应用于水平潜流人工湿地中进行强化去除总氮和总磷试验,同时分析并对比了菌剂强化潜流湿地系统和未投菌潜流湿地系统的功能菌数量变化规律.采用常绿植物构建2套相同的水平潜流湿地尾水处理模拟生态系统.结果表明,连续投加14 d B8菌液于水平潜流湿地后,在停止投菌后运行89 d内,投菌湿地系统平均脱氮率为70.1%,未投菌湿地系统平均脱氮率为50.2%;在停止投菌后运行19 d内,投菌湿地系统平均除磷率为63.1%,未投菌湿地系统平均除磷率为45.9%.经过4个月的跟踪运行,基于高通量454测序对湿地微生物群落结构及相关生物学信息对比分析,表明投加外菌源B8会引起潜流湿地内部微生物物种数量减少、微生物均匀度下降和湿地基质微生物群落多样性下降.通过湿地进水总氮浓度对投菌湿地系统和未投菌湿地系统脱氮率影响线性拟合分析表明,投菌湿地在不同氮负荷条件下脱氮效果显著优于未投菌湿地,证实投加B8菌可以有效强化水平潜流湿地的脱氮能力.
  • 加载中
  • [1] 张海珍, 陆光华. 污水处理厂尾水对金鱼生命早期生长和发育的影响[J]. 环境科学,2010,31(5):1333-1338
    [2] [3] LAURE M D, MALCOLM W C, TONY V, et al. Nutrient removal and microbial communities' development in a young unplanted constructed wetland using BauxsolTM pellets to treat wastewater[J]. Science of the Total Environment, 2014,484(15): 167-175
    [3] [4] HE G H, YI F, ZHOU S, et al. Microbial activity and community structure in two terrace-type wetlands constructed for the treatment of domestic wastewater[J].Ecological Engineering,2014,67:198-205
    [4] [5] MARTIN M, GARGALLO S, HERNANDEZ C C, et al. Phosphorus and nitrogen removal from tertiary treated urban wastewaters by a vertical flow constructed wetland[J].Ecological Engineering, 2013,61:34-42
    [5] [6] WANG T, SUN H W, JIANG C X, et al. Immobilization of Cd in soil and changes of soil microbial community by bioaugmentation of UV-mutated Bacillus subtilis 38 assisted by biostimulation [J]. European Journal of Soil Biology, 2014,65:62-69
    [6] [7] ZHANG L J, WU J Z, WANG Y G, et al. Influence of bioaugmentation with Ferroplasma thermophilum on chalcopyrite bioleaching and microbial community structure [J]. Hydrometallurgy, 2014,146:15-23
    [7] [8] PENG X W, ROSA A B, IVO A N, et al. Impact of bioaugmentation on biochemical methane potential for wheat straw with addition of Clostridium cellulolyticum [J]. Bioresource Technology, 2014,152:567-571
    [8] [10] VASVI C, CHANDRA S N. A high throughput method and culture medium for rapid screening of phosphate accumulating microorganisms [J].Bioresource Technology,2011,102(17):8057 -8062
    [9] [15] LIU Y, MAITE P J, YUAN Z G. The effect of free nitrous acid on key anaerobic processes in enhanced biological phosphorus removal systems[J]. Bioresource Technology,2013,130:382-389
    [10] [16] KAPAGIANNIDIS A G, ZAFIRIADIS I, AIVASIDIS A. Comparison between aerobic and anoxic metabolism of denitrifying-EBPR sludge: effect of biomass poly-hydroxyalkanoates content[J]. New Biotechnology, 2013,30(2):227-236
    [11] [20] RIZZO A, LANGERGRABER G, GALVAO A, et al. Modelling the response of laboratory horizontal flow constructed wetlands to unsteady organic loads with HYDRUS-CWM1[J]. Ecological Engineering, 2014,68: 209-213
    [12] [21] JEFFREY P S, JAMES W C, JOHN H R J. Fate and distribution of arsenic in a process-designed pilot-scale constructed wetland treatment system[J]. Ecological Engineering, 2014,68: 251-259
    [13] [22] ONUR C T, JAN V, CENGIZ T. Constructed wetlands for boron removal: A review[J]. Ecological Engineering, 2014,64: 350-359
  • 加载中
计量
  • 文章访问数:  1142
  • HTML全文浏览数:  1068
  • PDF下载数:  596
  • 施引文献:  0
出版历程
  • 收稿日期:  2015-03-29
  • 刊出日期:  2015-12-15
陈晶, 张敏特, 陈萍, 邓文, 周新程, 张文艺. 菌剂强化潜流湿地总氮总磷去除及功能菌特性[J]. 环境化学, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
引用本文: 陈晶, 张敏特, 陈萍, 邓文, 周新程, 张文艺. 菌剂强化潜流湿地总氮总磷去除及功能菌特性[J]. 环境化学, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
CHEN Jing, ZHANG Minte, CHEN Ping, DEN Wen, ZHOU Xincheng, ZHANG Wenyi. Nitrogen and phosphorus removal and characteristics of functional microbes in subsurface flow wetland with microbe augmentation[J]. Environmental Chemistry, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902
Citation: CHEN Jing, ZHANG Minte, CHEN Ping, DEN Wen, ZHOU Xincheng, ZHANG Wenyi. Nitrogen and phosphorus removal and characteristics of functional microbes in subsurface flow wetland with microbe augmentation[J]. Environmental Chemistry, 2015, 34(12): 2268-2274. doi: 10.7524/j.issn.0254-6108.2015.12.2015032902

菌剂强化潜流湿地总氮总磷去除及功能菌特性

  • 1.  常州大学环境与安全工程学院, 常州, 213164;
  • 2.  江苏科技大学土木工程和建筑学院, 镇江, 212005
基金项目:

"

十二五"

国家水体污染控制与治理科技重大专项(2012zx07301-001)

国家自然科学基金(41571471)

常州市科技支撑计划资助.

摘要: 从活性污泥中筛选的1株具有高效反硝化能力的聚磷菌B8应用于水平潜流人工湿地中进行强化去除总氮和总磷试验,同时分析并对比了菌剂强化潜流湿地系统和未投菌潜流湿地系统的功能菌数量变化规律.采用常绿植物构建2套相同的水平潜流湿地尾水处理模拟生态系统.结果表明,连续投加14 d B8菌液于水平潜流湿地后,在停止投菌后运行89 d内,投菌湿地系统平均脱氮率为70.1%,未投菌湿地系统平均脱氮率为50.2%;在停止投菌后运行19 d内,投菌湿地系统平均除磷率为63.1%,未投菌湿地系统平均除磷率为45.9%.经过4个月的跟踪运行,基于高通量454测序对湿地微生物群落结构及相关生物学信息对比分析,表明投加外菌源B8会引起潜流湿地内部微生物物种数量减少、微生物均匀度下降和湿地基质微生物群落多样性下降.通过湿地进水总氮浓度对投菌湿地系统和未投菌湿地系统脱氮率影响线性拟合分析表明,投菌湿地在不同氮负荷条件下脱氮效果显著优于未投菌湿地,证实投加B8菌可以有效强化水平潜流湿地的脱氮能力.

English Abstract

参考文献 (13)

返回顶部

目录

/

返回文章
返回