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Effect off Dynamic Process Conditions on Nitrogen Oxides Emission from a Nitrifying Culture

机译:动态工艺条件对硝化培养物中氮氧化物排放的影响

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Nitric oxide (NO) and nitrous oxide (N_2O) emissions from nitrifying ecosystems are a serious threat to the environment. The factors influencing the emission and the responsible microorganisms and pathways were studied using a laboratory-scale nitrifying reactor system. The nitrifying culture was established at growth rates relevant to wastewater treatment plants (WWTPs). During stable ammonia oxidation, 0.03% of ammonium was emitted as NO and 2.8% was emitted as N_2O. Although mixed cultures were used, clear responses in emission of ammonia oxidizing bacteria (AOB) could be detected and it was concluded that the denitrification pathway of AOB was the main source of the emissions. Emissions of nitrogen oxides in the system were strongly influenced by oxygen, nitrite, and ammonium concentrations. Steady state emission levels greatly underestimate the total emission, because changes in oxygen, nitrite, and ammonium concentrations induced a dramatic rise in NO and N_2O emission. The data presented can be used as an indication for NO and N_2O emission by AOB in plug-flow activated sludge systems, which is highly relevant because of the atmospheric impact and potential health risk of these compounds.
机译:硝化生态系统排放的一氧化氮(NO)和一氧化二氮(N_2O)对环境构成严重威胁。使用实验室规模的硝化反应器系统研究了影响排放的因素以及负责任的微生物和途径。建立硝化文化的速度与废水处理厂(WWTP)有关。在稳定的氨氧化过程中,排放了0.03%的铵作为NO,排放了2.8%的N_2O。尽管使用了混合培养,但可以检测到氨氧化细菌(AOB)排放的明确反应,并得出结论,AOB的反硝化途径是排放的主要来源。系统中氮氧化物的排放受到氧气,亚硝酸盐和铵浓度的强烈影响。稳态排放水平大大低估了总排放,因为氧气,亚硝酸盐和铵浓度的变化导致NO和N_2O排放急剧增加。所提供的数据可以用作指示流在活性污泥系统中AOB排放NO和N_2O的指标,由于这些化合物对大气的影响和潜在的健康风险,因此它们是高度相关的。

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