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用于饮用水处理的生物电化学与硫自养反硝化联合工艺

Combined bioelectrochemical and sulfur autotrophic denitrification for drinking water treatment.

作者信息

Wang Haiyan, Qu Jiuhui

机构信息

State Key Laboratory of Environmental Aquatic Chemistry, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, PO Box 2871, Beijing 100085, China.

出版信息

Water Res. 2003 Sep;37(15):3767-75. doi: 10.1016/S0043-1354(03)00249-5.

Abstract

A combined bioelectrochemical and sulfur autotrophic denitrification process for drinking water treatment was put forward and investigated extensively in this paper. In this new process, the bioelectrochemical denitrification was carried out in the upper part of the reactor while sulfur denitrification in the lower part. The H+ produced in Sulfur Part could be consumed by hydrogen denitrification in Bioelectrochemical Part. Therefore, the limestone for pH adjustment in Sulfur Part was not necessary in this combined process, which avoided the problem of hardness increase. The sulfate accumulation in this combined reactor was less than that of the sulfur limestone autotrophic denitrification system. The effluent from two parts was kept neutral at optimum operation conditions. When the influent nitrate was 30 mg-N/L, the reactor could be operated efficiently at the hydraulic retention time ranged from 1.9 to 5h (corresponding minimum current was 16-3 mA), i.e. the effluent NO3(-)-N removal ranged from 90% to 100% without nitrite accumulation and the effluent sulfate concentration was lower than 170 mg/L. The maximum volume-loading rate of the reactor was 0.381 kg NO3(-)-N/(m3d). The biomass and scanning electron microscope micrographs of Sulfur Part were also analyzed.

摘要

本文提出并广泛研究了一种用于饮用水处理的生物电化学与硫自养反硝化联合工艺。在这个新工艺中,生物电化学反硝化在反应器上部进行,而硫反硝化在下部进行。硫部分产生的H⁺可被生物电化学部分的氢反硝化消耗。因此,在这种联合工艺中,硫部分不需要用于调节pH的石灰石,避免了硬度增加的问题。该联合反应器中的硫酸盐积累量低于硫石灰石自养反硝化系统。在最佳运行条件下,两部分的出水保持中性。当进水硝酸盐为30 mg-N/L时,反应器在水力停留时间为1.9至5小时(相应最小电流为16 - 3 mA)范围内可高效运行,即出水NO₃⁻-N去除率在90%至100%之间,无亚硝酸盐积累,且出水硫酸盐浓度低于170 mg/L。反应器的最大容积负荷率为0.381 kg NO₃⁻-N/(m³·d)。还对硫部分的生物量和扫描电子显微镜图像进行了分析。

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