Hydrogen Gas Production from Tannery Wastewater by Electrocoagulation of a Continuous Mode with Simultaneous Pollutants Removal

Abdalhadi Deghles, Uğur Kurt
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引用次数: 9

Abstract

The performance of a continuous electrocoagulation (EC) process was investigated for tannery wastewater treatment using aluminum and iron electrodes. The effects of the operating parameters, such as current density, pH of solution and inlet flow rate, on pollutants removal efficiency and recovery of hydrogen gas were investigated in order to optimize process performance. In the case of aluminum electrodes, The results showed that for tannery wastewater with an influent pH adjusted at about 6, the use of a current density of 14 mA/cm 2 , and an EC time of 125 min, gave access to pollutants (COD, Color, Cr, and NH3-N) removal efficiency 73, 94, 100 and 51%, respectively. The energy yield of harvested hydrogen was 16% of the electrical energy demand of the electrocoagulation process. However, in the case of iron electrodes, with effluent pH adjusted at about 7, , the use of a current density of 14 mA/cm 2 , and an EC time of 125 min, gave access to pollutants (COD, Color, Cr, and NH3-N) removal efficiency 67, 93, 100 and 46 %, respectively. And also, the energy yield of harvested hydrogen was 15 % of the electrical energy demand of the electrocoagulation process. Thus, the operating costs for two cases were found to be 0.675 $/m 3 wastewater. It could be seen that hydrogen gas production coupled with pollutants removal efficiency by EC continuous mode would be an effective approach for energy recovery and wastewater reutilization.
连续电凝法制备制革废水制氢,同时去除污染物
研究了连续电絮凝(EC)工艺处理铝、铁电极制革废水的性能。为了优化工艺性能,研究了电流密度、溶液pH、进口流量等操作参数对污染物去除效率和氢气回收率的影响。以铝电极为例,在pH值为6左右、电流密度为14 mA/ cm2、EC时间为125 min的条件下,对制革废水的COD、Color、Cr和NH3-N的去除率分别为73,94,100和51%。收获的氢气的能量产量为电凝过程电能需求的16%。然而,在铁电极的情况下,将出水pH调节为约7,使用14 mA/ cm2的电流密度,EC时间为125 min,对污染物(COD, Color, Cr和NH3-N)的去除效率分别为67%,93%,100%和46%。而且,收集的氢气的能量产量是电凝过程所需电能的15%。因此,两个案例的运营成本为0.675美元/立方米废水。由此可见,EC连续模式的产氢与污染物去除效率相结合,将是实现能源回收和废水回用的有效途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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