首页> 外文期刊>Journal of Environmental Management >The influence of decreased hydraulic retention time on the performance and stability of co-digestion of sewage sludge with grease trap sludge and organic fraction of municipal waste
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The influence of decreased hydraulic retention time on the performance and stability of co-digestion of sewage sludge with grease trap sludge and organic fraction of municipal waste

机译:减少水力停留时间对污水污泥与油脂捕集污泥和城市垃圾有机部分共消化性能和稳定性的影响

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The effect of hydraulic retention time ranging from 12 to 20 d on process performance and stability was investigated in two anaerobic completely stirred tank reactors with a working liquid volume equal to 6 litres. The reactors were fed with mixtures containing (on volatile solids basis): 40% of sewage sludge, 30% of organic fraction of municipal waste and 30% of grease trap sludge. The change of hydraulic retention time did not significantly affect process stability. However, methane yields as well as volatile solids removal decreased from 0.54 to 0.47 1 per kg of added volatile solids and 65% to 60% respectively, with the decrease of hydraulic retention time. Despite the fact that the best process performance was achieved for hydraulic retention time of 20 days, the obtained results showed that it is also possible to carry out the co-digestion process at shorter hydraulic retention times with good results. Furthermore, gas production rate as well as biogas production at the shortest hydraulic retention time were approximately 46% higher in comparison to results obtained at the longest hydraulic retention time. In this context, the proposed solution seems to be an interesting option, because it provides an unique opportunity for wastewater treatment plants to improve their profitability by enhancing energy recovery from sludge as well as full utilisation of the existing infrastructure and hence creates a new potential place for alternative treatment of organic industrial waste such as: fat-rich materials or food waste. However, implementation of the solution at wastewater treatment plants is still a big challenge and needs studies including identification of optimal digesting conditions, information about substrate pumping, inhibition thresholds and processing properties. Additionally, due to the characteristics of both co-substrates their introduction to the full-scale digester should be carefully planned due to a potential risk of overloading of the digester. For this reason, a gradual increase of the share of these wastes in the co-digestion mixture is highly recommended, because it will allow for the acclimatization of bacteria as well as prevent overloading. The results of this study show the importance of gradual acclimatization of microorganisms to the changing environmental conditions. It was found that concentration of long chain fatty acids in effluents increased with the reduction of hydraulic retention time, but this phenomenon did not significantly influence the performance and stability of the process probably due to changes hydraulic retention time being gradual. Although for palmitic acid a moderate negative correlation with volatile solids removal was observed.
机译:在两个工作液体积等于6升的厌氧完全搅拌釜式反应器中,研究了12至20 d的水力停留时间对过程性能和稳定性的影响。向反应器中加入的混合物包含(以挥发性固体计):40%的污水污泥,30%的城市垃圾有机部分和30%的油脂收集器污泥。水力停留时间的变化不会显着影响过程稳定性。但是,随着水力停留时间的减少,甲烷的生成量以及挥发性固体的去除量分别从每千克添加的挥发性固体0.54降至0.47 1,从65%降至60%,减少了60%。尽管在20天的水力停留时间中获得了最佳的处理性能,但所得结果表明,也可以在较短的水力停留时间下进行共消化过程,从而获得良好的结果。此外,与在最长水力停留时间获得的结果相比,在最短水力停留时间的气体生产率和沼气产量大约高46%。在这种情况下,拟议的解决方案似乎是一个有趣的选择,因为它为废水处理厂提供了独特的机会,可通过提高污泥的能量回收以及对现有基础设施的充分利用来提高其盈利能力,从而创造一个新的潜在场所用于有机工业废物的替代处理,例如:富含脂肪的材料或食物垃圾。然而,在废水处理厂中实施该解决方案仍然是一个巨大的挑战,需要进行研究,包括确定最佳的消化条件,有关底物泵送的信息,抑制阈值和处理性能。另外,由于两种共基质的特性,由于潜在的消化器过载风险,应仔细计划将其引入全尺寸蒸煮器。因此,强烈建议逐步增加共消化混合物中这些废物的份额,因为这将使细菌适应环境并防止超载。这项研究的结果表明,微生物逐渐适应环境条件变化的重要性。已经发现,随着水力停留时间的减少,废水中长链脂肪酸的浓度增加,但是这种现象并没有显着影响该过程的性能和稳定性,这可能是由于水力停留时间的逐渐变化所致。尽管对于棕榈酸,观察到与挥发性固体去除的中等程度的负相关。

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