Unlocking the potential of sidestream EBPR: exploring the coexistence of PAO, GAO and DGAO for effective phosphorus and nitrogen removal.

IF 2.5 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Water Science and Technology Pub Date : 2025-03-01 Epub Date: 2025-03-06 DOI:10.2166/wst.2025.038
Fabrizio Sabba, McKenna Farmer, Patrick Dunlap, Cindy Qin, Joseph Kozak, James Barnard, George Wells, Leon Downing
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引用次数: 0

Abstract

Wastewater treatment facilities use enhanced biological phosphorus removal (EBPR) to meet discharge quality limits. However, the EBPR process can experience upsets due to a lack of influent carbon or inadequate anaerobic zones. By using a sidestream EBPR (S2EBPR) process, carbon can be generated internally through fermentation processes and a higher anaerobic mass fraction can be attained in smaller volumes. This study investigates nutrient removal and microbial community trends in a full-scale S2EBPR demonstration at the Calumet Water Reclamation Plant. The study aims to improve a process model of the system by better representing the activity of glycogen-accumulating organisms (GAO) and potential competitors of phosphorus-accumulating organisms (PAO), which were found in high abundance in this study. Modifying anaerobic hydrolysis, GAO glycogen storage and ORP activity parameters resulted in model prediction improvements of approximately 5% for nitrate and nitrite and 10-60% for phosphorus. The study also uses shotgun metagenomic sequencing to profile denitrification pathways of PAO and GAO. It shows that denitrifying GAO may contribute to nitric oxide reduction to a greater degree than denitrifying PAO. This study improves process modeling predictions for S2EBPR and highlights the potential role of denitrifying PAO and GAO in combined phosphorus and nitrogen removal in S2EBPR.

释放侧流EBPR的潜力:探索PAO、GAO和DGAO共存的有效除磷除氮效果。
污水处理设施采用强化生物除磷(EBPR)来达到排放质量限制。然而,EBPR过程可能会由于进水碳缺乏或厌氧区不足而出现故障。通过使用侧流EBPR (S2EBPR)工艺,碳可以通过发酵过程在内部产生,并且可以在较小的体积中获得更高的厌氧质量分数。本研究在Calumet水回收厂进行了全规模S2EBPR示范,研究了营养物去除和微生物群落趋势。本研究旨在通过更好地表征本研究中丰度较高的糖原积累生物(GAO)及其潜在竞争对手聚磷生物(PAO)的活性,完善该系统的过程模型。修改厌氧水解、GAO糖原储存和ORP活性参数使模型对硝酸盐和亚硝酸盐的预测提高了约5%,对磷的预测提高了10-60%。该研究还使用霰弹枪宏基因组测序来分析PAO和GAO的反硝化途径。结果表明,反硝化GAO比反硝化PAO对一氧化氮的还原作用更大。本研究改进了S2EBPR的过程建模预测,并强调了反硝化PAO和GAO在S2EBPR联合除磷除氮中的潜在作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Water Science and Technology
Water Science and Technology 环境科学-工程:环境
CiteScore
4.90
自引率
3.70%
发文量
366
审稿时长
4.4 months
期刊介绍: Water Science and Technology publishes peer-reviewed papers on all aspects of the science and technology of water and wastewater. Papers are selected by a rigorous peer review procedure with the aim of rapid and wide dissemination of research results, development and application of new techniques, and related managerial and policy issues. Scientists, engineers, consultants, managers and policy-makers will find this journal essential as a permanent record of progress of research activities and their practical applications.
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