研究论文

低温低碳氮比好氧反硝化菌的筛选及鉴定

  • 周兰影 ,
  • 马秀兰 ,
  • 张晨东 ,
  • 王呈玉 ,
  • 张凤君
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  • 1. 吉林大学地下水资源与环境教育部重点实验室, 长春 130021;
    2. 吉林省产品质量监督检验院, 长春 130022;
    3. 吉林农业大学资源与环境学院, 长春 130118
周兰影,博士研究生,研究方向为水处理技术,电子信箱:735189410@qq.com

收稿日期: 2013-11-15

  修回日期: 2014-02-25

  网络出版日期: 2014-04-26

基金资助

吉林省重大科技攻关项目(20130204054SF);国家环境保护公益性行业科研专项(201009009)

Screening and Identification of an Aerobic Denitrifying Bacterium with Low C/N Ratio at Low Temperature

  • ZHOU Lanying ,
  • MA Xiulan ,
  • ZHANG Chendong ,
  • WANG Chengyu ,
  • ZHANG Fengjun
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  • 1. Key Laborotary of Groundwater Resources and Environment of Ministry of Education, Jilin University, Changchun 130021, China;
    2. Institute of Superuision Inspection on Product Quality of Jilin Province, Changchun 130022, China;
    3. College of Resources and Environment, Jilin Agricultural University, Changchun 130118, China

Received date: 2013-11-15

  Revised date: 2014-02-25

  Online published: 2014-04-26

摘要

传统的反硝化工艺存在反硝化细菌的世代时间较长(特别是在低温的冬季)、水力停留时间长、运行和投资费用大等问题。为寻找更好的反硝化细菌,从冬季北方城市污水厂驯化活性污泥中分离出1 株耐低温、低碳氮比,且脱氮率较高的好氧反硝化菌株,命名为HFX08。初步鉴定该菌株为假单胞菌属(Pseudomonas),G-菌。该菌株的最适生长温度为10~20℃,生长曲线符合S 型曲线,拟合方程相关性系数达到了差异极显著水平。随着碳氮比的增加,该菌株的反硝化速率随之提高,脱氮率最高可达92%。

本文引用格式

周兰影 , 马秀兰 , 张晨东 , 王呈玉 , 张凤君 . 低温低碳氮比好氧反硝化菌的筛选及鉴定[J]. 科技导报, 2014 , 32(11) : 33 -37 . DOI: 10.3981/j.issn.1000-7857.2014.11.004

Abstract

The conventional denitrification process has limited applications due to its disadvantages, such as long generation time of denitrifying bacteria, especially in cold winter, long hydraulic retention time and high costs. In this study, an aerobic denitrifying bacterium designated as HFX08 was isolated from a domestic sewage plant in a northern city of China in winter. The strain HFX08 exhibited high denitrification performance under low C/N ratio at low temperature. The results indicated that the strain HFX08 was G- and identified as Pseudomonas sp. The optimum temperature for its growth is in the range of 10-20℃. Its growth curve was fitted to S growth curve, whose fitting coefficient reached the level of extremely significant difference. The nitrogen removal rate by strain HFX08 increased with increasing C/N ratio, up to 92%.

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