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Size-dependent anaerobic digestion rates of flocculated activated sludge: Role of intrafloc mass transfer resistance

机译:絮凝活性污泥的尺寸依赖性厌氧消化速率:絮凝剂内部传质阻力的作用

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The anaerobic digestion rate for flocculated sludge has been considered to be lower than that of original sludge, particularly in the later stages of digestion; Chu et al. (2003) attributed this relatively slower rate to the increased mass transfer resistance for reactants through the large floes after flocculation. This study confirmed that methane production was retarded by flocculation. The structure of the floc was identified with fluorescence in situ hybridization (FISH) and a confocal laser scanning microscope (CLSM) technique. To verify the mass transfer resistance induced by flocculation, microsensors were applied to assess the response of oxygen concentration distribution inside the floes that are subjected to sudden changes in ambient oxygen levels. Response time for the electrode at a floc's center was five times greater than the response time in original sludge floes. Although the effective diffusivity of oxygen in the floc increased by 2.3 times after flocculation, the increased size of the flocculated floc was the major contributor to the total mass transfer resistance to oxygen.
机译:絮凝污泥的厌氧消化率被认为低于原始污泥,特别是在消化的后期。 Chu等。 (2003年)归因于絮凝后,较大的絮凝物使反应物传质阻力增加,这是相对较慢的速率。这项研究证实了絮凝会阻碍甲烷的产生。通过荧光原位杂交(FISH)和共聚焦激光扫描显微镜(CLSM)技术鉴定絮状物的结构。为了验证由絮凝引起的传质阻力,微传感器用于评估絮凝物内部的氧气浓度分布的响应,这些氧气浓度会受到环境氧气水平的突然变化的影响。絮状物中心电极的响应时间是原始污泥絮状物中响应时间的五倍。尽管絮凝后氧在絮凝物中的有效扩散率增加了2.3倍,但絮凝后絮凝物尺寸的增加是抗氧总传质的主要因素。

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