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Nutrient gradients in a granular activated carbon biofilter drives bacterial community organization and dynamics

机译:颗粒状活性炭生物滤池中的营养梯度驱动细菌群落的组织和动力学

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摘要

The quality of drinking water is ensured by hygienic barriers and nitration steps, such as ozonation and granular activated carbon (GAC) nitration. Apart from adsorption, GAC nitration involves microbial processes that remove biodegradable organic carbon from the ozonated ground or surface water and ensures biological stability of the treated water. In this study, microbial community dynamics in were monitored during the start-up and maturation of an undisturbed pilot-scale GAC filter at 4 depths (10, 45, 80 and 115 cm) over a period of 6 months. New ecological tools, based on 16S rRNA gene-DGGE, were correlated to filter performance and microbial activity and showed that the microbial gradients developing in the filter was of importance. At 10 cm from the top, receiving the freshly ozonated water with the highest concentration of nutrients, the microbial community dynamics were minimal and the species richness remained low. However, the GAC samples at 80-115 cm showed a 2-3 times higher species richness than the 10-45 cm samples. The highest biomass densities were observed at 45-80 cm, which corresponded with maximum removal of dissolved and assimilable organic carbon. Furthermore, the start-up period was clearly distinguishable using the Lorenz analysis, as after 80 days, the microbial community shifted to an apparent steady-state condition with increased evenness. This study showed that GAC biofilter performance is not necessarily correlated to biomass concentration, but rather that an elevated functionality can be the result of increased microbial community richness, evenness and dynamics.
机译:饮用水的质量通过卫生隔离层和硝化步骤来确保,例如臭氧化和颗粒活性炭(GAC)硝化。除吸附外,GAC硝化还涉及微生物过程,该过程可从臭氧化的地下水或地表水中去除可生物降解的有机碳,并确保处理后水的生物稳定性。在这项研究中,在6个月的时间内,在4个深度(10、45、80和115厘米)的不受干扰的中试规模GAC过滤器的启动和成熟过程中,监测了微生物群落动态。基于16S rRNA基因-DGGE的新生态工具与过滤器性能和微生物活性相关,表明在过滤器中形成的微生物梯度非常重要。在距离顶部10厘米处,接收到的新鲜臭氧水养分浓度最高,微生物群落动态极小,物种丰富度仍然很低。但是,GAC样品在80-115 cm处的物种丰富度比10-45 cm样品高2-3倍。在45-80 cm处观察到最高的生物量密度,这与最大程度地去除溶解的和可吸收的有机碳相对应。此外,使用Lorenz分析可以清楚地区分启动期,因为80天后,微生物群落转变为明显的稳态状态,并增加了均匀度。这项研究表明,GAC生物滤池性能不一定与生物质浓度相关,而是功能增强可能是微生物群落丰富度,均匀性和动态性增加的结果。

著录项

  • 来源
    《Water Research》 |2011年第19期|p.6355-6361|共7页
  • 作者单位

    Laboratory of Microbial Ecology and Technology (LabMET), Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, B-9000 Gent, Belgium;

    Laboratory of Microbial Ecology and Technology (LabMET), Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, B-9000 Gent, Belgium;

    Laboratory of Microbial Ecology and Technology (LabMET), Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, B-9000 Gent, Belgium;

    Eawag, Swiss Federal Institute 0/Aquatic Science and Technology, Uberlandstr. 133, CH-8600 Diibendorf, Switzerland;

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

    drinking water; microbial ecology; microbial resource manangement;

    机译:饮用水;微生物生态学微生物资源管理;
  • 入库时间 2022-08-17 13:48:28

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