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首页> 外文期刊>Sustainable Energy Technologies and Assessments >Polypropylene biofilm carrier and fabricated stainless steel mesh supporting activated carbon: Integrated configuration for performances enhancement of microbial fuel cell
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Polypropylene biofilm carrier and fabricated stainless steel mesh supporting activated carbon: Integrated configuration for performances enhancement of microbial fuel cell

机译:聚丙烯生物膜载体和制造的不锈钢网,支撑活性炭:综合配置用于微生物燃料电池的性能增强

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摘要

The mass transfer resistance at the anode and the reduction of oxygen at the cathode are currently perceived as two major bottlenecks of microbial fuel cells. To overcome these issues, an integrated configuration was developed for performances enhancement on simultaneous bioelectricity generation and wastewater treatment in single chamber up-flow membrane-less microbial fuel cell (UFML-MFC). Polypropylene biofilm carriers were used as anodic packing materials and fabricated stainless steel mesh holder supporting activated carbon flakes (CF/SM) was employed as biocathode configuration in this study. The employments of polypropylene carriers and CF/SM enhanced not only the active surface area and microbial adhesion, but also the mass transfer of MFC system. The maximum output voltage, power and current generation achieved in this system were 615 mV, 162.59 mW/m(2) and 468.74 mA/m(2), respectively. In terms of wastewater treatment performance, UFML-MFC achieved 85.6% and 95.7% of COD and NH4+ removal, respectively. The COD reduction in closed circuit was 9.87% better than open circuit due to stimulation of electrochemical-active bacteria for electron transfer to the anode, which favoured organic matter degradation. The enrichment of electrogenic bacteria at A3, which was largest electrode spacing (23 cm) in the system resulted a higher voltage and power output compared to A1 (11 cm) and A2 (17 cm). Besides, the energy performances of this MFC system were also evaluated based on NERs (1.074 kWh/kg COD), NERv (22.86 Wh/m(3)) and CE (10.42%).
机译:当前认为阴极处的阳极处的传质阻力和阴极处的氧还原为微生物燃料电池的两个主要瓶颈。为了克服这些问题,开发了一种集成配置,用于在单室上流动膜微生物燃料电池(UFML-MFC)中同时生物电性产生和废水处理的性能增强。聚丙烯生物膜载体用作阳极填料材料,并在本研究中使用支撑活性炭薄片(CF / SM)的制造的不锈钢网夹子作为生物病态配置。聚丙烯载体和CF / SM的就业不仅增强了活性表面积和微生物粘附,而且增强了MFC系统的传质。该系统中实现的最大输出电压,功率和电流产生分别为615 mV,162.59mW / m(2)和468.74mA / m(2)。就废水处理性能而言,UFML-MFC分别达到了85.6%和95.7%的COD和NH4 +去除。由于电化学活性细菌的刺激,闭合电路的COD降低比开路电路优于电子转移到阳极,这有利于有机物质降解。在系统中富集的A3处的电气细菌(23cm)导致较高的电压和功率输出与A1(11cm)和A2(17厘米)相比。此外,还基于NERS(1.074 kWh / kg COD),神经(22.86WH / m(3))和CE(10.42%)评估该MFC系统的能量性能。

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