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首页> 外文期刊>Environmental Science and Pollution Research >Optimized aeration strategies for nitrogen removal efficiency: application of end gas recirculation aeration in the fixed bed biofilm reactor
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Optimized aeration strategies for nitrogen removal efficiency: application of end gas recirculation aeration in the fixed bed biofilm reactor

机译:优化氮气去除效率的曝气策略:在固定床生物膜反应器中的最终气体再循环通气应用

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摘要

Aeration strategy played an important role in reactor performance. In this study, when superficial upflow air velocity (SAV) decreased from 0.16 to 0.08 cm s(-1), low dissolved oxygen concentration (DO) of 2.0 mg L-1 occurred in reactor. The required depth for anoxic microenvironment in biofilm decreased from 902.3 to 525.9 mu m, which enhanced the growth of denitrifying bacteria and total nitrogen (TN) removal efficiency. However, decreasing aeration intensity resulted in insufficient hydraulic shear stress, which led to weak biofilm matrix structure. Mass biofilm detachment and reactor deterioration then occurred after 87 days of operation. An end gas recirculation aeration strategy was proposed to separately manipulate DO and aeration intensity. Low DO and high aeration intensity were simultaneously achieved, which enhanced the metabolism of denitrifying bacteria (such as Flavobacterium sp., Pseudorhodobacter sp., and Dok59 sp.) and EPS-producing bacteria (such as Zoogloea sp. and Rhodobacter sp.). Consequently, high TN removal performance (82.1 +/- 2.7%) and stable biofilm structure were achieved.
机译:曝气战略起到了反应器性能的重要作用。在这项研究中,当空塔上流空气速度(SAV)从降低0.16至0.08厘米秒(-1),低溶解氧浓度的2.0毫克(DO)L-1发生在反应器中。在生物膜缺氧微环境中的所需深度从902.3到525.9微米,这增强了反硝化细菌和总氮(TN)的去除效率的生长减少。然而,减少曝气强度导致液压剪应力不充分,从而导致弱的生物膜基质的结构。然后质量生物膜脱离和反应器劣化后操作87天发生。提出了一种端气体再循环曝气策略单独操纵DO和曝气强度。低DO和高曝气强度被同时实现,其增强的反硝化细菌的代谢(例如,黄杆菌属,Pseudorhodobacter属,和Dok59属)和EPS产生菌(如动胶菌属和红细菌属)。因此,高TN除去性能(82.1±2.7%)和稳定生物膜结构得以实现。

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