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Examination of Bacterial Characteristics of Anaerobic Membrane Bioreactors in Three Pilot-Scale Plants for Treating Low-Strength Wastewater by Application of the Colony-Forming-Curve Analysis Method

机译:应用菌落形成曲线分析法检测三种中试处理低浓度废水的厌氧膜生物反应器的细菌特性

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Characteristic sludge ecosystems arising in anaerobic membrane bioreactors of three pilot-scale plants treating low-strength (less than 1 g of biological oxygen demand per liter) sewage or soybean-processing wastewater were examined by analysis of the colony-forming-curves (CFC) obtained by counting colonies at suitable intervals. The wastewaters, containing high amounts of suspended solids (SS) (SS/chemical oxygen demand ratio, 0.51 to 0.80), were treated by using two types of bioreactors: (i) a hydrolyzation reactor for solubilization and acidification of SS in wastewater and (ii) a methane fermentation reactor for producing methane. The colony counts for the two sewage treatment plants continued to increase even after 3 weeks of incubation, whereas those for soybean-processing wastewater reached an approximately constant level within 3 weeks of incubation. The CFCs were analyzed by correlating the rate of colony appearance on roll tubes with the physiological types of bacteria present in the bioreactors. It was found that there were large numbers of slow-colony-forming anaerobic bacteria within the bioreactors and that the viable populations consisted of a few groups with different growth rates. It is considered that the slow-growing colonies appearing after 10 days of incubation were the dominant microflora in the sewage treated by hydrolyzation reactors. In particular, highly concentrated sludge (30.0 g of mixed-liquor volatile SS per liter) retained by the membrane separation module contained a large number of such bacteria. Slow-growing colonies of these bacteria could be counted by using a sludge extract medium prepared from only the supernatant of autoclaved sludge. In addition, the highest colony counts were almost always obtained with the sludge extract medium, meaning that most of the anaerobic bacteria in these sludges have complex nutrient requirements for growth. This report also indicates the usefulness of application of the CFC analysis method to the study of bacterial populations of anaerobic treatment systems.
机译:通过对菌落形成曲线(CFC)的分析,研究了三种中试规模的工厂的厌氧膜生物反应器中产生的特征性污泥生态系统,这些工厂处理低强度(每升生物需氧量少于1 g)污水或大豆加工废水。通过以适当的间隔对菌落计数来获得。通过使用两种类型的生物反应器处理含有大量悬浮固体(SS)(SS /化学需氧量比为0.51至0.80)的废水:(i)水解反应器,用于溶解和酸化废水中的SS和( ii)用于产生甲烷的甲烷发酵反应器。即使在孵化3周后,两个污水处理厂的菌落数仍继续增加,而大豆处理废水的菌落数在孵化3周内达到了大致恒定的水平。通过将卷管上菌落出现的速率与生物反应器中存在的细菌的生理类型相关联来分析CFC。研究发现,生物反应器中存在大量的慢菌落形成厌氧细菌,并且存活种群由几组具有不同增长率的细菌组成。认为在温育10天后出现的生长缓慢的菌落是经水解反应器处理的污水中的优势菌群。尤其是,膜分离组件保留的高浓度污泥(每升30.0 g混合液挥发性SS)含有大量此类细菌。这些细菌生长缓慢的菌落可以通过仅使用高压灭菌污泥的上清液制备的污泥提取培养基进行计数。此外,污泥提取培养基几乎总是获得最高菌落数,这意味着这些污泥中的大多数厌氧细菌对生长具有复杂的营养需求。该报告还指出了将CFC分析方法应用于厌氧处理系统细菌种群研究的有用性。

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