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Optimisation of storage driven denitrification by using on-line specific oxygen uptake rate monitoring during SND in a-SBR

机译:通过在a-SBR的SND期间使用在线特定氧气吸收率监控来优化存储驱动的反硝化

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This study builds on previous experience of maximising the formation of GOD as poly-hydroxybutyrate (PHB) and now describes a feedback technique of preserving the use of PHB for denitrification resulting in enhanced nitrogen removal rather than allowing its wasteful-oxidation by oxygen. The feedback technique uses on-line SOUR monitoring for detecting the end-point of nitrification and controlling the aerobic phase length accordingly. The laboratory SBR was operated such that all organic substrate (acetate) was rapidly converted to PHB, which then served as the electron donor for nitrogen removal via simultaneous nitrification and denitrification (SND) during the aerobic phase (up to 70% SND). During SBR cycling with a fixed aeration length (240 minutes), PHB was unnecessarily oxidised after ammonium depletion, resulting in little denitrification and poor total nitrogen removal (69%). However, when the aerobic phase length was controlled via the SOUR, up to 1.8 CmM PHB (58 mg L-1 COD) could be preserved, enabling improved total nitrogen removal (86%). The drop in the SOUR after ammonium depletion was a reproducible event that could be detected even when using raw wastewater and fresh activated sludge. The SOUR-control technique holds promise to build up PHB over a number of SBR cycles. While advanced oxygen-control is used for improved N-removal in several existing WWTPs, this study investigates the importance of oxygen control with relevance to PHB driven SND in sequencing batch reactors.
机译:这项研究建立在最大化将GOD形成为多羟基丁酸酯(PHB)的先前经验的基础上,现在描述了一种反馈技术,该技术可保留使用PHB进行反硝化,从而提高除氮能力,而不是允许其被氧气浪费地氧化。反馈技术使用在线SOUR监测来检测硝化终点并相应地控制好氧相的长度。操作实验室SBR,以便将所有有机底物(乙酸盐)迅速转化为PHB,然后将其用作有氧阶段(最高70%SND)中同时进行硝化和反硝化(SND)脱氮的电子供体。在固定曝气时间(240分钟)的SBR循环过程中,铵耗尽后PHB不必要地被氧化,导致反硝化作用少和总氮去除率低(69%)。但是,当通过SOUR控制好氧相长度时,可以保留高达1.8 CmM PHB(58 mg L-1 COD),从而提高了总氮去除率(86%)。铵耗竭后酸味的下降是可再现的事件,即使使用原废水和新鲜的活性污泥也可以检测到。 SOUR控制技术有望在多个SBR周期内建立PHB。尽管先进的氧气控制技术已在一些现有的污水处理厂中用于改善N的去除效果,但本研究调查了与PHB驱动的SND相关的氧气控制技术在分批分批反应器中的重要性。

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