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Ultrasonic treatment enhances sludge disintegration and degradation in a photosynthetic bacteria- bioelectrochemical system

机译:超声波处理增强了光合细菌-生物电化学系统中污泥的分解和降解

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Practitioner pointsThe sludge was disintegrated by the ultrasound treatment.The supernatant separated from treated sludge was further degraded by a bioelectrochemical system combined with photosynthetic bacteria.The ultrasonic treatment efficiency was enhanced by supernatant separation.The PSBBES method effectively improved the soluble chemical oxygen demand (SCOD) degradation from the supernatant.The effects of several key operating factors including light (darkphoto), voltage, and temperature were systematically investigated.Excess sludge contains a large amount of organic matter, most of which is present in the form of bacteria and extracellular polymeric substances. In this study, a photosynthetic bioelectrochemical system (BES) combined with ultrasonic treatment (UT) was investigated to mineralize sludge. The sludge was disintegrated by the UT, and the supernatant separated from the treated sludge was further degraded through a bioelectrochemical system containing photosynthetic bacteria (PSBBES). The UT efficiency was enhanced by supernatant separation. The PSBBES method effectively improved the degradation of the soluble chemical oxygen demand (SCOD) from the supernatant. The SCOD and protein removal were increased 1.4 and 1.5 times, respectively, compared to BES without PSB. In addition, the effects of several key operating factors including illumination, voltage, and temperature were systematically investigated. This study provides a basis for further development of sludge mineralization processes.
机译:执业点超声处理可分解污泥,生化系统结合光合细菌进一步降解处理后污泥分离的上清液,上清液分离可提高超声处理效率,PSBBES方法有效提高了可溶性化学需氧量(SCOD)从上清液中降解。系统地研究了几个关键操作因素的影响,包括光(暗光),电压和温度。过量的污泥包含大量的有机物,其中大多数以细菌和细胞外聚合物的形式存在物质。在这项研究中,研究了光合作用生物电化学系统(BES)与超声处理(UT)的结合,以使污泥矿化。污泥通过UT分解,从处理过的污泥中分离出的上清液通过包含光合细菌(PSBBES)的生物电化学系统进一步降解。通过上清液分离提高了UT效率。 PSBBES方法有效改善了上清液中可溶性化学需氧量(SCOD)的降解。与没有PSB的BES相比,SCOD和蛋白质去除分别增加了1.4倍和1.5倍。此外,系统地研究了包括照明,电压和温度在内的几个关键操作因素的影响。该研究为进一步发展污泥矿化过程提供了基础。

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