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混合地下人工湿地系统处理猪场废水的性能

Performance of hybrid subsurface constructed wetland system for piggery wastewater treatment.

作者信息

Zhang X, Inoue T, Kato K, Harada J, Izumoto H, Wu D, Sakuragi H, Ietsugu H, Sugawara Y

机构信息

Graduate School of Agriculture, Hokkaido University, N9W9, Kita-ku, Sapporo, Hokkaido 060-8589, Japan E-mail:

NARO Tohoku Agricultural Research Center, Shimo-Kuriyagawa, Morioka, Iwate 020-0198, Japan.

出版信息

Water Sci Technol. 2016;73(1):13-20. doi: 10.2166/wst.2015.457.

Abstract

The objective of this study was to evaluate performance of a hybrid constructed wetland (CW) built for high organic content piggery wastewater treatment in a cold region. The system consists of four vertical and one horizontal flow subsurface CWs. The wetland was built in 2009 and water quality was monitored from the outset. Average purification efficiency of this system was 95±5, 91±7, 89±8, 70±10, 84±15, 90±6, 99±2, and 93±16% for biochemical oxygen demand (BOD5), chemical oxygen demand (COD), total carbon (TC), total nitrogen (TN), ammonium-N (NH4-N), total phosphorus (TP), total coliform (T. Coliform), and suspended solids (SS), respectively during August 2010-December 2013. Pollutant removal rate was 15±18 g m(-2) d(-1), 49±52 g m(-2) d(-1), 6±4 g m(-2) d(-1), 7±5 g m(-2) d(-1), and 1±1 g m(-2) d(-1) for BOD5, COD, TN, NH4-N, and TP, respectively. The removal efficiency of BOD5, COD, NH4-N, and SS improved yearly since the start of operation. With respect to removal of TN and TP, efficiency improved in the first three years but slightly declined in the fourth year. The system performed well during both warm and cold periods, but was more efficient in the warm period. The nitrate increase may be attributed to a low C/N ratio, due to limited availability of carbon required for denitrification.

摘要

本研究的目的是评估为寒冷地区高有机含量养猪废水处理而构建的复合人工湿地(CW)的性能。该系统由四个垂直流和一个水平流潜流式人工湿地组成。该湿地建于2009年,从一开始就对水质进行监测。在2010年8月至2013年12月期间,该系统对生化需氧量(BOD5)、化学需氧量(COD)、总碳(TC)、总氮(TN)、铵态氮(NH4-N)、总磷(TP)、总大肠菌群(T. Coliform)和悬浮固体(SS)的平均净化效率分别为95±5%、91±7%、89±8%、70±10%、84±15%、90±6%、99±2%和93±16%。BOD5、COD、TN、NH4-N和TP的污染物去除率分别为15±18 g m(-2) d(-1)、49±52 g m(-2) d(-1)、6±4 g m(-2) d(-1)、7±5 g m(-2) d(-1)和1±1 g m(-2) d(-1)。自运行开始以来,BOD5、COD、NH4-N和SS的去除效率逐年提高。关于TN和TP的去除,前三年效率提高,但第四年略有下降。该系统在温暖和寒冷时期均表现良好,但在温暖时期效率更高。硝酸盐增加可能归因于反硝化所需的碳可用性有限导致的低C/N比。

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