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Performance of a Dual Chamber Microbial Fuel Cell using Sodium Chloride as Catholyte

机译:使用氯化钠作为阴极电解液的双室微生物燃料电池的性能

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Microbial fuel cell represents an emerging technology to attain electrical energy from wastewater. There are several alternative methods available for wastewater treatment; Microbial fuel cell is one of them, which generates green energy from wastewater for making a contribution to renewable sources of energy. This study states the performance of microbial fuel cell with different parameters i.e., catholyte, electrodes, and initial COD concentration. Sodium chloride was used as catholyte and graphite rods were used as both electrodes. The sodium chloride concentrations in the cathode and initial chemical oxygen demand have also been optimized. The optimum sodium chloride of 70 mM in the cathode solution generates the maximum power density of 408.98μW/msup2/sup. As the sodium chloride concentration increases in catholyte, the capacity for power production also increases. The voltage output of Microbial fuel cell increases when the initial concentration of chemical oxygen demand increases to a peak value of 1500 mg/l and if the value exceeds this limit, the performance of Microbial fuel cell (in terms of voltage) starts decreasing. The chemical oxygen demand removal efficiency of a microbial fuel cell with simple graphite electrode and graphite electrodes with coated iron were 79% and 90% respectively.
机译:微生物燃料电池代表了一种从废水中获得电能的新兴技术。有几种可用于废水处理的替代方法;微生物燃料电池是其中之一,它从废水产生绿色能量,以便为可再生能源提供贡献。该研究表明,具有不同参数的微生物燃料电池的性能,即阴极电解液,电极和初始COD浓度。用作阴极电解液和石墨棒作为两个电极用作氯化钠。还优化了阴极和初始化学需氧量中的氯化钠浓度。阴极溶液中70mm的最佳氯化钠产生408.98μw/ m 2 的最大功率密度。随着氯化钠浓度在阴极电解液中增加,电力产生的能力也增加。微生物燃料电池的电压输出增加,当化学需氧量的初始浓度增加到1500mg / L的峰值时,如果该值超过该限制,则微生物燃料电池的性能(在电压方面)开始降低。微生物燃料电池用简单石墨电极和具有涂层铁的石墨电极的化学氧需求去除效率分别为79%和90%。

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