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Effect of cathode material and charge loading on the nitrification performance and bacterial community in leachate treating Electro-MBRs

机译:阴极材料和电荷负荷对浸润性浸润性能和细菌群落电气 - MBR的影响

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Electro-MBR technology, which combines an electrocoagulation process inside the mixed liquor of a membrane bioreactor, was studied for the treatment of a high-strength ammonia leachate (124 +/- 4 mg 1 NH4-N L-1). A lab-scale aerobic Electro-MBR was operated with a solid retention time of 45 days, hy- draulic retention times of 24h and 12h, and charge loading ranging from 100 to 400 mAh L-1. At 400 mAh L-1, with a combination of a Ti/Pt cathode and a sacrificial iron anode, removal percentages for ammonia nitrogen, total organic carbon, and total phosphorus were 99.8%, 38%, and 99.0%, respectively. At 400 mAh L-1, the estimated ferric ion dosage was 325 mg Fe3+ L-1. Experiments conducted with different cathode materials showed that previously reported inhibition phenomena may result from a cathodic nitrate reduction into ammonia nitrogen. Conventional cathode materials, such as graphite, have electrochemical nitrate reduction rates of -0.03 mg NO3-N mAh(-1). By comparison, when using Ti/Pt, the rate was -0.0045 mg NO3-N mAh(-1) (85% lower than graphite due to its low hydrogen overpotential). Charge loading tested in this study had no significant impact on both nitrification performance and microbial population diversity. However, the relative abundance of the mixed liquor's Nitrosomonas increased from 4.8% to 8.2% when the charge loading increased from 0 to 400 mAh L-1. Results from this study are promising for future applications of the Ti/Pt - Iron Electro-MBR in various high-strength ammonia wastewater treatment applications. (C) 2020 Elsevier Ltd. All rights reserved.
机译:研究了膜生物反应器混合液内的电凝过程的电橡胶技术,用于治疗高强度氨渗滤液(124 +/- 4mg 1 NH4-N 1 -1)。使用45天的固体保留时间操作实验室规模的有氧电力-MBR,Hy-Draulic保留时间为24小时和12小时,并且电荷负荷从100-400mAh L-1的压力。在400mAhl-1,具有Ti / Pt阴极和牺牲铁阳极的组合,分别去除氨氮,总有机碳和总磷的含量分别为99.8%,38%和99.0%。在400mAh L-1,估计的铁离子剂量为325mg Fe3 + L-1。用不同的阴极材料进行的实验表明,先前报道的抑制现象可能是由阴极硝酸盐还原成氨氮产生的。常规阴极材料,例如石墨,具有电化学硝酸盐还原率-0.03mg NO 3-n MAH(-1)。通过比较,当使用Ti / Pt时,速率为-0.0045mg No3-n Mah(-1)(由于其低氢气,低于石墨85%)。本研究中测试的电荷载荷对硝化性能和微生物种群多样性没有显着影响。然而,当电荷负荷增加到400mAh L-1时,混合液的亚硝基菌的相对丰度从4.8%增加到8.2%。该研究的结果是对各种高强度氨废水处理应用的Ti / Pt-Iron Erilitro-MBR的未来应用。 (c)2020 elestvier有限公司保留所有权利。

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