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自然阳光促使好氧细菌颗粒光序批式反应器中水生藻类-细菌颗粒快速形成。

Natural sunlight induced rapid formation of water-born algal-bacterial granules in an aerobic bacterial granular photo-sequencing batch reactor.

机构信息

School of Civil Engineering, Wuhan University, Wuhan, China.

School of Civil Engineering, Wuhan University, Wuhan, China.

出版信息

J Hazard Mater. 2018 Oct 5;359:222-230. doi: 10.1016/j.jhazmat.2018.07.051. Epub 2018 Jul 20.

Abstract

Wastewater treatment by means of algal-bacterial granules has become a hot topic worldwide recently. Rapid granulation of algal-bacterial granules was achieved in an aerobic bacterial granular sequencing batch reactor (SBR) under natural sunlight exposure. Occurrence of abundant filamentous bacteria bridging the water-born algae, and overproduction of extracellular polymeric substances (EPS) (especially polysaccharides (PS), tryptophan & protein-like, and humic acid-like substances) were observed on the first 3 days, while the algae grew into the inner side of the granules and mature granules were obtained on day 7. The growth of the water-born algae slightly decreased the settleability, mean sizes of the granules, but stimulated the bioactivity significantly. Whereas, the biomass retention decreased before day 3, and got stable soon with the maturation period with symbiotic growth of algal-bacterial biomass. Illumina results revealed that the introduction of algae reduced the richness and diversity of bacterial community. Besides, few changes in structure and some compositions shifts in bacterial communities were found, while the predominant algae shifted from Diatomea to green algae Chlorophyceae. The possible mechanism for natural sunlight induced granulation of algal-bacterial granules was thus proposed based on the interactions between algae and bacteria.

摘要

最近,利用藻菌颗粒进行废水处理已成为全球热点话题。在自然阳光照射下的好氧细菌颗粒序批式反应器(SBR)中,藻菌颗粒实现了快速颗粒化。在最初的 3 天内,观察到大量丝状细菌桥接水生藻类,并过度产生细胞外聚合物物质(EPS)(特别是多糖(PS)、色氨酸和蛋白质样物质以及腐殖酸样物质),而藻类则生长到颗粒的内部,并在第 7 天获得成熟的颗粒。水生藻类的生长略微降低了颗粒的沉降性能、平均粒径,但显著刺激了生物活性。然而,在第 3 天之前,生物量保持率下降,随着藻菌生物量共生的成熟阶段,很快就稳定下来。Illumina 结果表明,藻类的引入降低了细菌群落的丰富度和多样性。此外,还发现细菌群落的结构变化不大,组成也有所变化,而优势藻类从硅藻转向绿藻门绿藻。因此,根据藻类和细菌之间的相互作用,提出了自然光诱导藻菌颗粒形成的可能机制。

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