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Optimization of Bioelectricity Generation in Constructed Wetland-Coupled Microbial Fuel Cell Systems

机译:人工湿地耦合微生物燃料电池系统中生物发电的优化

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Constructed wetland-coupled microbial fuel cell systems (CW-MFCs) incorporate an aerobic zone and an anaerobic zone to generate electricity that achieves the oxidative degradation of contaminants. However, there are few reports on the performance of such coupled systems. In this study, we determined the optimal configuration of CW-MFCs to characterize their electricity generation performance. Based on the results using different levels of dissolved oxygen among the CW-MFCs, we concluded that a 20-cm distance between the anode and cathode produced an optimal removal of chemical oxygen demand (COD) of 94.90% with a 0.15 W/m 3 power density, 339.80 Ω internal resistance, and 0.31% coulombic efficiency. In addition, a COD of 200 mg/L provided greater electricity generation (741 mV open circuit voltage, 0.20 W/m 3 power density, 339.80 Ω internal resistance, and 0.49 mA current) and purification ability (90.45% COD removal) to meet system COD loading limitations than did higher COD values. By adding 50 mM phosphate buffer solution to synthetic wastewater, relatively high conductivity and buffer capacity were achieved, resulting in improvement in electricity generation. These findings highlight important aspects of bioelectricity generation in CW-MFCs.
机译:人工湿地耦合微生物燃料电池系统(CW-MFCs)结合了好氧区和厌氧区,以产生可实现污染物氧化降解的电能。但是,关于这种耦合系统的性能的报道很少。在这项研究中,我们确定了CW-MFC的最佳配置以表征其发电性能。基于在CW-MFC中使用不同水平的溶解氧的结果,我们得出结论,阳极和阴极之间20 cm的距离产生的最佳化学需氧量(COD)去除率为94.90%,而0.15 W / m 3功率密度,339.80Ω内部电阻和0.31%的库仑效率。此外,200 mg / L的COD可提供更大的发电量(741 mV开路电压,0.20 W / m 3功率密度,339.80Ω内部电阻和0.49 mA电流)和净化能力(90.45%COD去除率)以满足系统的COD装载限制要高于较高的COD值。通过向合成废水中添加50 mM磷酸盐缓冲溶液,可以获得相对较高的电导率和缓冲能力,从而改善了发电量。这些发现突出了CW-MFC中生物发电的重要方面。

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