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用于处理海水循环水产养殖溪流的生物电化学反硝化

Bioelectrochemical Denitrification for the Treatment of Saltwater Recirculating Aquaculture Streams.

作者信息

Marx Sander Elisa, Virdis Bernardino, Freguia Stefano

机构信息

Advanced Water Management Centre, The University of Queensland, Level 4, Gehrmann Laboratories Building (60), Brisbane, QLD 4072, Australia.

出版信息

ACS Omega. 2018 Apr 30;3(4):4252-4261. doi: 10.1021/acsomega.8b00287. Epub 2018 Apr 16.

Abstract

Maintaining low concentrations of nitrogen compounds (ammonium, nitrate and nitrite) in recirculating aquaculture waters is extremely important for a larger and healthier fish production, as well as for water discharge purposes. Although ammonium removal from aquaculture streams is usually done within a nitrifying step, nitrate removal via denitrification is still partially limited by the low organic matter availability. Therefore, an easy-to-operate autotrophic denitrifying bioelectrochemical system is herein proposed for the treatment of seawater aquaculture streams. The nitrate-containing synthetic stream flows sequentially through a biological denitrifying cathode (placed at the lower portion of a tubular reactor) and an abiotic anode (generating electrons and oxygen from water splitting, at the upper portion). Experimental results with synthetic seawater showed that the system reached denitrification rates of 0.13 ± 0.01 kg N m day, operating with minimum ammonium and nitrite accumulation, as well as minimum chlorine formation in the abiotic anode, despite the high chloride concentration. There results support the technical potential for simultaneous bioelectrochemical denitrification and partial re-oxygenation of aquaculture waters either for recirculation or discharge purposes.

摘要

在循环水产养殖水中维持低浓度的含氮化合物(铵、硝酸盐和亚硝酸盐)对于实现更大规模且更健康的鱼类生产以及水排放目的而言极为重要。尽管通常在硝化步骤中实现从水产养殖水流中去除铵,但通过反硝化作用去除硝酸盐仍部分受限于低有机质可用性。因此,本文提出一种易于操作的自养反硝化生物电化学系统用于处理海水养殖水流。含硝酸盐的合成水流依次流经生物反硝化阴极(置于管状反应器下部)和非生物阳极(在上部通过水分解产生电子和氧气)。合成海水的实验结果表明,该系统实现了0.13±0.01 kg N m⁻² d⁻¹的反硝化速率,运行时铵和亚硝酸盐积累量最小,且尽管氯化物浓度高,但非生物阳极中氯的生成量也最小。这些结果支持了生物电化学同步反硝化以及对水产养殖水进行部分再充氧以用于循环或排放目的的技术潜力。

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