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亚硝酸盐和游离亚硝酸(FNA)在废水处理厂中的作用。

The role of nitrite and free nitrous acid (FNA) in wastewater treatment plants.

机构信息

Advanced Environmental Biotechnology Centre (AEBC), Nanyang Environment and Water Research Institute (NEWRI), Nanyang Technological University, School of Biological Science, Level N-B2-01, 60 Nanyang Avenue, Singapore 639798, Singapore.

出版信息

Water Res. 2011 Oct 1;45(15):4672-82. doi: 10.1016/j.watres.2011.06.025. Epub 2011 Jun 28.

Abstract

Nitrite is known to accumulate in wastewater treatment plants (WWTPs) under certain environmental conditions. The protonated form of nitrite, free nitrous acid (FNA), has been found to cause severe inhibition to numerous bioprocesses at WWTPs. However, this inhibitory effect of FNA may possibly be gainfully exploited, such as repressing nitrite oxidizing bacteria (NOB) growth to achieve N removal via the nitrite shortcut. However, the inhibition threshold of FNA to repress NOB (∼0.02 mg HNO2-N/L) may also inhibit other bioprocesses. This paper reviews the inhibitory effects of FNA on nitrifiers, denitrifiers, anammox bacteria, phosphorus accumulating organisms (PAO), methanogens, and other microorganisms in populations used in WWTPs. The possible inhibition mechanisms of FNA on microorganisms are discussed and compared. It is concluded that a single inhibition mechanism is not sufficient to explain the negative impacts of FNA on microbial metabolisms and that multiple inhibitory effects can be generated from FNA. The review would suggest further research is necessary before the FNA inhibition mechanisms can be more effectively used to optimize WWTP bioprocesses. Perspectives on research directions, how the outcomes may be used to manipulate bioprocesses and the overall implications of FNA on WWTPs are also discussed.

摘要

亚硝酸盐在某些环境条件下会在污水处理厂(WWTP)中积累。已发现亚硝酸盐的质子化形式,游离亚硝酸(FNA),会对 WWTP 中的许多生物过程造成严重抑制。然而,FNA 的这种抑制作用可能被有益地利用,例如通过抑制亚硝酸盐氧化菌(NOB)的生长来实现通过亚硝酸盐捷径进行氮去除。但是,FNA 抑制 NOB 的抑制阈值(约 0.02 mg HNO2-N/L)也可能抑制其他生物过程。本文综述了 FNA 对 WWTP 中使用的硝化菌、反硝化菌、厌氧氨氧化菌、聚磷菌(PAO)、产甲烷菌和其他微生物的抑制作用。讨论并比较了 FNA 对微生物的可能抑制机制。结论是,单一的抑制机制不足以解释 FNA 对微生物代谢的负面影响,而且 FNA 可以产生多种抑制作用。在更有效地利用 FNA 抑制机制来优化 WWTP 生物过程之前,还需要进一步研究。还讨论了研究方向的观点、这些结果如何用于操纵生物过程以及 FNA 对 WWTP 的整体影响。

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