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Optimising the Hydraulic Retention Time in a Pilot-Scale Microbial Electrolysis Cell to Achieve High Volumetric Treatment Rates Using Concentrated Domestic Wastewater

机译:优化中试微生物电解池中的水力停留时间以实现使用浓缩生活污水的高体积处理率

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摘要

Bioelectrochemical systems (BES) have the potential to deliver energy-neutral wastewater treatment. Pilot-scale tests have proven that they can operate at low temperatures with real wastewaters. However, volumetric treatment rates (VTRs) have been low, reducing the ability for this technology to compete with activated sludge (AS). This paper describes a pilot-scale microbial electrolysis cell (MEC) operated in continuous flow for 6 months. The reactor was fed return sludge liquor, the concentrated filtrate of anaerobic digestion sludge that has a high chemical oxygen demand (COD). The use of a wastewater with increased soluble organics, along with optimisation of the hydraulic retention time (HRT), resulted in the highest VTR achieved by a pilot-scale MEC treating real wastewater. Peak HRT was 0.5-days, resulting in an average VTR of 3.82 kgCOD/m ∙day and a 55% COD removal efficiency. Finally, using the data obtained, a direct analysis of the potential savings from the reduced loading on AS was then made. Theoretical calculation of the required tank size, with the estimated costs and savings, indicates that the use of an MEC as a return sludge liquor pre-treatment technique could result in an industrially viable system.
机译:生物电化学系统(BES)具有实现能源中性废水处理的潜力。中试测试已经证明它们可以在低温下与实际废水一起运行。但是,容积处理率(VTR)较低,降低了该技术与活性污泥(AS)竞争的能力。本文介绍了一个中试规模的微生物电解池(MEC),连续运行6个月。向反应器中加入回流污泥液,即具有高化学需氧量(COD)的厌氧消化污泥浓缩滤液。使用具有增加的可溶性有机物的废水,以及优化的水力停留时间(HRT),通过中试规模的MEC处理实际废水而实现了最高的VTR。峰值HRT为0.5天,因此平均VTR为3.82 kgCOD / m∙天,COD去除效率为55%。最后,使用获得的数据,直接分析了AS负载减少带来的潜在节省。从理论上计算所需的水箱尺寸,并估算成本和节省,这表明将MEC用作污泥回流预处理技术可能会产生工业上可行的系统。

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