Unifying concepts in methanogenic, aerobic, and anammox sludge granulation

厌氧氨氧化菌 颗粒(地质) 造粒 废水 胞外聚合物 污水处理 生化工程 环境科学 微生物种群生物学 群体感应 制浆造纸工业 化学 环境化学 生物 环境工程 反硝化 生物膜 材料科学 细菌 氮气 工程类 反硝化细菌 古生物学 遗传学 有机化学 复合材料
作者
Simon Mills,Anna Christine Trego,Marco Prevedello,Jo De Vrieze,Vincent O’Flaherty,Piet N.L. Lens,Gavin Collins
出处
期刊:Environmental science & ecotechnology [Elsevier BV]
卷期号:17: 100310-100310 被引量:15
标识
DOI:10.1016/j.ese.2023.100310
摘要

The retention of dense and well-functioning microbial biomass is crucial for effective pollutant removal in several biological wastewater treatment technologies. High solids retention is often achieved through aggregation of microbial communities into dense, spherical aggregates known as granules, which were initially discovered in the 1980s. These granules have since been widely applied in upflow anaerobic digesters for waste-to-energy conversions. Furthermore, granular biomass has been applied in aerobic wastewater treatment and anaerobic ammonium oxidation (anammox) technologies. The mechanisms underpinning the formation of methanogenic, aerobic, and anammox granules are the subject of ongoing research. Although each granule type has been extensively studied in isolation, there has been a lack of comparative studies among these granulation processes. It is likely that there are some unifying concepts that are shared by all three sludge types. Identifying these unifying concepts could allow a unified theory of granulation to be formed. Here, we review the granulation mechanisms of methanogenic, aerobic, and anammox granular sludge, highlighting several common concepts, such as the role of extracellular polymeric substances, cations, and operational parameters like upflow velocity and shear force. We have then identified some unique features of each granule type, such as different internal structures, microbial compositions, and quorum sensing systems. Finally, we propose that future research should prioritize aspects of microbial ecology, such as community assembly or interspecies interactions in individual granules during their formation and growth.
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