首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Tracing membrane biofouling to the microbial community structure and its metabolic products: An investigation on the three-stage MBR combined with worm reactor process
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Tracing membrane biofouling to the microbial community structure and its metabolic products: An investigation on the three-stage MBR combined with worm reactor process

机译:用于微生物群落结构的追踪膜和其代谢产物:三阶段MBR结合蠕虫反应器工艺的研究

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The biofouling characteristics of an MBR (S-MBR) combined with the worm reactor and a conventional MBR (C-MBR) were analyzed, respectively, over the three-stage (fast-slow-fast) process. Whether it was in the C-MBR or the S-MBR, the species of the active sludge (AS) were similar to that of the cake sludge (CS) in stage 1 (before day 1), the bacterial adsorption and the metabolites attachment contributed to this transmembrane pressure (TMP) rise. In the stage 2, the TMP increasing rate of the C-MBR was eight times more than that of the S-MBR. During this period, a characteristic community colonized the AS and CS of the S-MBR with the microbes, ie Flavobacteria, Firmicutes and Chloroflexi which were responsible for the degradation of extracellular polymeric substances (EPS) and soluble microbial products (SMP). These dominant species caused the slower accumulation of biofouling metabolites in the CS, resulting in the slow rise-related in TMP. Meanwhile, the enrichment of beta-proteobacterium and the absence of Mycobacterium and Propionibacterium in AS and CS of the C-MBR were deemed as the main biological factors bringing about the rise-associated in TMP. In the stage 3, the biofilm was matured, and the cake layer was more compacted, which resulted in an abrupt rise in TMP and severe membrane fouling. Additionally, the statistical analysis revealed that a highly correlation between the TMP increasing rate and the content of carbonhydrates in SMP (SMPc). When the SMPc content increased slowly, there was a relatively slow biofouling. But, when the SMPc increasing rate was greater, it led to a more serious membrane fouling with the sudden TMP jump. Additionally, there was also a highly significant correlation coefficient for the TMP rise and the content of carbonhydrates in EPS (EPSc) and the protein in SMP (SMPp), rather than the protein in EPS (EPSp). The cluster analysis showed that the microbes contributing to membrane fouling were more abundant in the C-MBR, while t
机译:分别分别在三阶段(快速速度快)的方式分别与蠕虫反应器和常规MBR(C-MBR)组合的MBR(S-MBR)的生物污垢特性。无论是在C-MBR还是S-MBR中,活性污泥(AS)的种类都与第1期(第1天之前)的蛋糕污泥(CS)类似,细菌吸附和代谢物附着物导致这种跨膜压力(TMP)升高。在第2阶段,C-MBR的TMP增加率比S-MBR的速度增加了八倍。在此期间,特征群落与S-MBR的特征群落与微生物,即黄曲杆菌,更常规和氯叠氏曲线殖民,这是负责细胞外聚合物物质(EPS)和可溶性微生物产品(SMP)的降解的。这些主导物种引起了CS中生物污染代谢物的较慢积累,导致TMP中慢上升相关。同时,β-植物的富集和缺乏C-MBR的CS和Cs的缺乏和丙杆菌被认为是具有TMP中崛起相关的主要生物因素。在第3阶段,生物膜成熟,并且滤饼层更加压实,导致TMP和严重的膜污垢突然升高。另外,统计分析表明,TMP增加率与SMP(SMPC)中碳水化合物含量之间的高度相关性。当SMPC含量缓慢增加时,生物污染较慢。但是,当SMPC增加的速度更大时,它导致了更严重的膜与突然的TMP跳跃。另外,TMP升高以及EPS(EPSC)和SMP(SMPP)中的蛋白质中的碳水化合物含量也是非常显着的相关系数,而不是EPS(EPSP)中的蛋白质。聚类分析表明,在C-MBR中,对膜污染的微生物更丰富,而T

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