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Efficient and integrated start-up strategy for partial nitrification to nitrite treating low C/N domestic wastewater

机译:用于亚硝酸盐处理低C / N生活废水的部分硝化的高效综合启动策略

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Nitrogen removal via the nitrite pathway has the potential of reducing the requirements for aeration consumption and carbon source. However, the development of an efficient and quick start-up strategy for partial nitrification to nitrite has proven difficult in the treatment of low strength wastewater. In this study, the feasibility of partial nitrification achieved by using real-time aeration duration control was not only demonstrated from the kinetic mechanism, but also was validated in three sequencing batch reactors (SBRs) fed with low C/N domestic wastewater. Nitrite accumulation could be achieved when aeration was terminated as soon as an inflexion pH point was reached (the dpH/dt became from negative to positive). The reduction or limitation of the NOB growth could be achieved through aeration duration control, due to leaving no extra time for NOB to convert the accumulated nitrite. The experimental operation results also showed that partial nitrification with nitrite accumulation ratios of over 80% was achieved successfully in these three reactors with process control. Fluorescence in situ hybridization (FISH) analysis indicated the reduction of NOB was achieved and AOB became the dominant nitrifying bacteria. Moreover, an integrated start-up strategy based on aeration duration control was proposed to quickly achieve partial nitrification to nitrite.
机译:通过亚硝酸盐途径脱氮有可能减少对通气消耗和碳源的需求。然而,事实证明,在处理低浓度废水中,很难开发出一种有效,快速的将亚硝化成亚硝酸盐的快速启动策略。在这项研究中,通过实时曝气持续时间控制实现部分硝化的可行性不仅从动力学机理上得到了证明,而且在三个低C / N生活污水进料的顺序分批反应器(SBR)中得到了验证。当达到弯曲的pH点时终止通气时,亚硝酸盐的积累就可以实现(dpH / dt从负变为正)。 NOB生长的减少或限制可通过控制曝气时间来实现,因为没有多余的时间让NOB转化积累的亚硝酸盐。实验操作结果还表明,在这三个具有过程控制的反应器中,亚硝酸盐积累率均超过80%,实现了部分硝化。荧光原位杂交(FISH)分析表明,NOB减少了,AOB成为了主要的硝化细菌。此外,提出了一种基于曝气持续时间控制的集成启动策略,以快速实现部分亚硝化为亚硝酸盐。

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