Nitrogen cycling during wastewater treatment.

2区 生物学 Q1 Immunology and Microbiology
Advances in applied microbiology Pub Date : 2019-01-01 Epub Date: 2018-12-10 DOI:10.1016/bs.aambs.2018.10.003
Dawn E Holmes, Yan Dang, Jessica A Smith
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引用次数: 80

Abstract

Many wastewater treatment plants in the world do not remove reactive nitrogen from wastewater prior to release into the environment. Excess reactive nitrogen not only has a negative impact on human health, it also contributes to air and water pollution, and can cause complex ecosystems to collapse. In order to avoid the deleterious effects of excess reactive nitrogen in the environment, tertiary wastewater treatment practices that ensure the removal of reactive nitrogen species need to be implemented. Many wastewater treatment facilities rely on chemicals for tertiary treatment, however, biological nitrogen removal practices are much more environmentally friendly and cost effective. Therefore, interest in biological treatment is increasing. Biological approaches take advantage of specific groups of microorganisms involved in nitrogen cycling to remove reactive nitrogen from reactor systems by converting ammonia to nitrogen gas. Organisms known to be involved in this process include autotrophic ammonia-oxidizing bacteria, heterotrophic ammonia-oxidizing bacteria, ammonia-oxidizing archaea, anaerobic ammonia oxidizing bacteria (anammox), nitrite-oxidizing bacteria, complete ammonia oxidizers, and dissimilatory nitrate reducing microorganisms. For example, in nitrifying-denitrifying reactors, ammonia- and nitrite-oxidizing bacteria convert ammonia to nitrate and then denitrifying microorganisms reduce nitrate to nonreactive dinitrogen gas. Other nitrogen removal systems (anammox reactors) take advantage of anammox bacteria to convert ammonia to nitrogen gas using NO as an oxidant. A number of promising new biological treatment technologies are emerging and it is hoped that as the cost of these practices goes down more wastewater treatment plants will start to include a tertiary treatment step.

污水处理过程中的氮循环。
世界上许多污水处理厂在排放到环境中之前没有从废水中去除活性氮。过量的活性氮不仅对人体健康有负面影响,还会造成空气和水污染,并可能导致复杂的生态系统崩溃。为了避免环境中过量活性氮的有害影响,需要实施确保去除活性氮物种的三级废水处理实践。许多污水处理设施依靠化学品进行三级处理,然而,生物脱氮做法更加环保和经济有效。因此,人们对生物治疗的兴趣正在增加。生物方法利用参与氮循环的特定微生物群,通过将氨转化为氮气,从反应器系统中去除活性氮。已知参与这一过程的生物包括自养氨氧化细菌、异养氨氧化细菌、氨氧化古细菌、厌氧氨氧化细菌(anammox)、亚硝酸盐氧化细菌、完全氨氧化剂和异化硝酸盐还原微生物。例如,在硝化反硝化反应器中,氨氧化细菌和亚硝酸盐氧化细菌将氨转化为硝酸盐,然后反硝化微生物将硝酸盐还原为非活性二氮气体。其他脱氮系统(厌氧氨氧化反应器)利用厌氧氨氧化细菌利用NO作为氧化剂将氨转化为氮气。许多有前途的新生物处理技术正在出现,人们希望随着这些做法的成本下降,更多的废水处理厂将开始包括三级处理步骤。
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来源期刊
Advances in applied microbiology
Advances in applied microbiology 生物-生物工程与应用微生物
CiteScore
8.20
自引率
0.00%
发文量
16
审稿时长
>12 weeks
期刊介绍: Advances in Applied Microbiology offers intensive reviews of the latest techniques and discoveries in this rapidly moving field. The editors are recognized experts and the format is comprehensive and instructive. Published since 1959, Advances in Applied Microbiology continues to be one of the most widely read and authoritative review sources in microbiology. Recent areas covered include bacterial diversity in the human gut, protozoan grazing of freshwater biofilms, metals in yeast fermentation processes and the interpretation of host-pathogen dialogue through microarrays.
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