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Nitrate removal from pharmaceutical wastewater using microbial electrochemical system supplied through low frequency-low voltage alternating electric current

机译:使用通过低频低压交流电流提供的微生物电化学系统从药物废水中除去硝酸盐

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In this study, a microbial electrochemical system (MES) was designed to evaluate the effects of a low frequency low voltage alternating electrical current on denitrification efficacy in the presence of ibuprofen as a low biodegradable organic carbon source. Cylindrical carbon cloth and stainless steel mesh electrodes containing a consortium of heterotrophic and autotrophic bacteria were mounted in the wall of the designed laboratory scale bioreactor. The effects of inlet nitrate concentration (50-800 mg L-1), retention time (2.5-24 h), waveform magnitude (0.1-9.6 Vp-p), adjustable direct current voltage added to offset voltage (0.1-4.9 V), alternating current frequency (10-60 Hz), and waveforms (sinusoidal, square, and ramp) were studied in this work. The results showed that the proposed system removes 800 mg L-1 nitrate up to 95% during 6.5 h. Optimum conditions were obtained in the 8 Vp-p using a frequency of 10 Hz of a sinusoidal waveform. The morphology studies confirmed bacterial morphology change when applying the alternating current. Dehydrogenase activity of biofilms formed on surface of stainless steel electrodes increased to 15.24 mu gTF mg(biomass) cm(-2) d. The maximum bacterial activity was obtained at a voltage of 8 Vp-p. The experimental results revealed that the MES using a low frequency-low voltage alternating electrical current is a promising technique for nitrate removal from pharmaceutical wastewaters in the presence of low biodegradability of carbon sources such as ibuprofen. (C) 2017 Elsevier B.V. All rights reserved.
机译:在该研究中,设计了一种微生物电化学系统(MES),以评估低频低压交流电流在布洛芬作为低可生物降解的有机碳源的情况下对脱氮效能的影响。圆柱形碳布和不锈钢网电极,含有异养和自养细菌的联盟的壁上安装在设计的实验室比分生物反应器的壁中。入口硝酸盐浓度(50-800mg L-1),保留时间(2.5-24小时),波形幅度(0.1-9.6VP-P),可调节直流电压加入偏移电压(0.1-4.9 V)在这项工作中研究了交流电流频率(10-60 Hz)和波形(正弦,正方形和斜坡)。结果表明,该系统在6.5小时内除去800mg L-1硝酸盐,高达95%。使用正弦波的频率为10 Hz的8 VP-P中获得最佳条件。在施加交流电时,形态学研究证实了细菌形态变化。在不锈钢电极表面上形成的生物膜的脱氢酶活性增加到15.24μgmg(生物质)cm(-2)d。在8VP-P的电压下获得最大细菌活性。实验结果表明,使用低频 - 低电压交流电流的ME是用于在低生物降解性的碳源的低生物降解性如布洛芬的情况下从药物废水中去除硝酸盐的有希望的技术。 (c)2017 Elsevier B.v.保留所有权利。

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