Pan Yuting, van den Akker Ben, Ye Liu, Ni Bing-Jie, Watts Shane, Reid Katherine, Yuan Zhiguo
Advanced Wastewater Management Centre, The University of Queensland, St. Lucia, QLD, Australia.
Department of Environmental Science and Engineering, School of Architecture and Environment, Sichuan University, Chengdu, Sichuan 610065, China.
Sci Rep. 2016 Feb 8;6:20792. doi: 10.1038/srep20792.
Plug-flow activated sludge reactors (ASR) that are step-feed with wastewater are widely adopted in wastewater treatment plants (WWTPs) due to their ability to maximise the use of the organic carbon in wastewater for denitrification. Nitrous oxide (N2O) emissions are expected to vary along these reactors due to pronounced spatial variations in both biomass and substrate concentrations. However, to date, no detailed studies have characterised the impact of the step-feed configuration on emission variability. Here we report on the results from a comprehensive online N2O monitoring campaign, which used multiple gas collection hoods to simultaneously measure emission along the length of a full-scale, step-fed, plug-flow ASR in Australia. The measured N2O fluxes exhibited strong spatial-temporal variation along the reactor path. The step-feed configuration had a substantial influence on the N2O emissions, where the N2O emission factors in sections following the first and second step feed were 0.68% ± 0.09% and 3.5% ± 0.49% of the nitrogen load applied to each section. The relatively high biomass-specific nitrogen loading rate in the second section of the reactor was most likely cause of the high emissions from this section.
采用废水分段进水的推流式活性污泥反应器(ASR)因其能最大限度利用废水中的有机碳进行反硝化作用,而在污水处理厂(WWTP)中被广泛采用。由于生物量和底物浓度存在显著的空间变化,预计这些反应器中一氧化二氮(N₂O)的排放量会有所不同。然而,迄今为止,尚无详细研究描述分段进水配置对排放变异性的影响。在此,我们报告了一项全面的在线N₂O监测活动的结果,该活动使用多个气体收集罩同时测量澳大利亚一座全尺寸、分段进水、推流式ASR沿程的排放量。实测的N₂O通量沿反应器路径呈现出强烈的时空变化。分段进水配置对N₂O排放有重大影响,第一段和第二段分段进水后各段的N₂O排放因子分别为施加到各段氮负荷的0.68%±0.09%和3.5%±0.49%。反应器第二段相对较高的单位生物量氮负荷率很可能是该段高排放的原因。