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Kinetic studies on anaerobic co-digestion of ultrasonic disintegrated feed and biomass and its effect substantiated by microcalorimetry

机译:超声分解饲料和生物质厌氧消化的动力学研究及其微量量热法证实的效果

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Studies were carried out on anaerobic co-digestion of primary and secondary excess sludge obtained from tannery effluent treatment plant. Anaerobic biomass collected from a treatment plant was used as the source of micro-organisms. The optimum feed to micro-organism ratio was evaluated as 0.7 on the basis of volatile solids reduction cum gas production. Both feed and anaerobic biomass were subjected to ultrasonic pre-treatment in order to enhance the digestion process. Experiments carried out on batch mode showed significant increase in the gas production for pre-treated feed and biomass. Optimum pre-treatment durations were evaluated as 5 min for feed and 3 min for anaerobic biomass. Heat flow analyses of the anaerobic biomass using isothermal microcalorimetry throw light on different stages of digestion process. The effect of ultrasonic pre-treatment on anaerobic biomass was also substantiated using this technique. The heat energy released by pre-treated and untreated anaerobic biomass was evaluated as 16.3 and 7.6 kJ/kg, respectively. Kinetic analysis revealed that the overall rate constant of digestion process increased by 1.5 times due to pre-treatment. However, the initial lag time increased by about 20 % for the optimally pre-treated sample compared to untreated sample. Modified Gompertz equation was used to model, and the parameters were evaluated. The significance of this work lies on energy production (bio gas) and at the same time increasing the maintenance metabolism rate thereby minimizing excess sludge biomass generation.
机译:对从制革厂污水处理厂获得的一次和二次过量污泥进行厌氧共消化研究。从处理厂收集的厌氧生物质被用作微生物的来源。基于减少的挥发性固体和气体产生,最佳进料与微生物的比率被评估为0.7。饲料和厌氧生物质都经过超声波预处理,以增强消化过程。在分批模式下进行的实验表明,预处理饲料和生物质的产气量显着增加。最佳预处理持续时间评估为:饲料5分钟,厌氧生物质3分钟。使用等温微量热法对厌氧生物质进行热流分析,可以揭示消化过程的不同阶段。超声波预处理对厌氧生物量的影响也得到了证实。预处理和未经处理的厌氧生物质释放的热能分别评估为16.3和7.6 kJ / kg。动力学分析表明,由于预处理,消化过程的总速率常数增加了1.5倍。但是,与未经处理的样品相比,最佳预处理样品的初始滞后时间增加了约20%。使用改进的Gompertz方程建模,并评估参数。这项工作的意义在于能源生产(沼气),同时提高维持代谢率,从而最大程度地减少了污泥生物质的产生。

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