Hydraulic Loading on Test of Nitrogen and Phosphorus Removal from Rural Sewage by Subsurface Constructed Wetlands-Ponds Composite System

Article Preview

Abstract:

Based on the main factor of hydraulic loading, removal of nitrogen and phosphorus and effluent quality of rural domestic wastewater were studied in subsurface constructed wetlands-ponds system in Jiangxi Province. The results showed that there had good processing results on nitrogen and phosphorusremoval by subsurface constructed wetlands-ponds system,especially on removal of phosphorus.In the combined system removal influence of nitrogen and phosphorus were affected by hydraulic loading,it was influenced more significantly for nitrogen removal and had less influence on removal effect of phosphorus relatively.When the hydraulic loading was 72 m3·m-2·d-1, removal rate of TNNH3-NTP were 75.3%76.08%86.77% respectively,which was very good for the combined system;removal rate of TNNH3-NTP were 42.67%33.62%61.72% in the subsurface constructed wetlands; removal rate of TNNH3-NTP were 32.63%42.46%25.05% in the ponds.While hydraulic loading was lower,the subsurface constructed wetlands was the control factor for the combined system.With the increasing of hydraulic loading,the ponds was the control factor gradually. In the combined system, effluent quality of TN was superior to the first class B criteria specified in GB 18918-2002(15mg·L-1),effluent quality of NH3-N was superior to the first class B criteria (8mg·L-1), effluent quality of TP was superior to the case-Vwaters of surface water quality (GB3838-2002) standard (0.4 mg·L-1) .Research results could be the basis of combined system in Jiangxi Province.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 779-780)

Pages:

1347-1351

Citation:

Online since:

September 2013

Authors:

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] US EPA. Compendium method TO-11A: Determination of form aldehyde in ambientairusing adsorbent-cartridge followed by high performance liquid chromatography (HPLC)[R]. (1999).

Google Scholar

[2] YANG Yong, YE Chang-bing, ZENG Wei-qing. Mechanism of high efficient and stabilization of anaerobic stage-constructed wetland system in treatment of Sewage[J]. Environmental Science and Technology, 2011, (03): 37-40. (in Chinese).

Google Scholar

[3] TingZhang, DongXu, FengHe. et. Application of constructed wetland for water pollution control in China during 1990-2010[J]. Ecological Engineering, 2012, 47, 189-197.

DOI: 10.1016/j.ecoleng.2012.06.022

Google Scholar

[4] Wang Yan-li, ZHOU Yang. Advances in comprehensive utilization of submersed aquatic macrophytes[J]. Environmental Protection Science, 2009, 35(6): 16-19. (in Chinese).

Google Scholar

[5] Carignan R, Kalff J. Phosphorus sources for aquatic weeds: water or sediments[J]. Science, 1980(27): 987-989.

DOI: 10.1126/science.207.4434.987

Google Scholar

[6] YANG Guang, WANG Lan. Plant selection research of Northeast water landscape greening [J]. Chinese Flower plants, 2009, (07): 79-82. (in Chinese).

Google Scholar

[7] ZHOU Jin-bo, JIN Shu-quan, YAO Yong-ru. Comparison of nitrogen and phosphorus purification ability of six aquatic macrophytes under low temperature in winter[J]. Acta Agriculture Zhejiangensis, 2011, 23(02): 369-372. (in Chinese).

Google Scholar

[8] MAO Xiao-Ren, ZHOU Jin-Bo. Research on water purification capabilities of several ecological floating aquatic plants[J]. Acta Agriculture Zhejiangensis, 2011, (1): 157-159. (in Chinese).

Google Scholar

[9] ZHAO Su-fen, ZHOU Zhong-kui, HU Xiao-ying. Sanitary sewage treatment by compound constructed wetland [J]. Journal of Wuhan University of Science and Technology (Natural Science Edition), 2006, 29(2): 172-175. (in Chinese).

Google Scholar

[10] CristinaS.C. Calheiros, AnoukF. Duque, AlexandraMoura, et. Changes in the bacterial community structure in two-stage constructed wetlands with different plants for industrial wastewater treatment[J]. Bioresource Technology, 2009, 100, 3228-3235.

DOI: 10.1016/j.biortech.2009.02.033

Google Scholar

[11] LI Huai-zheng, ZHANG Xing-yi, CHEN Wei-bing ect. Effect of High Hydraulic loading on Intensive Shrimp Aquaculture Wastewater Treatment Performance in Constructed Wetlands[J]. environmental science. 2012, 33(5): 1597-1603.

Google Scholar

[12] Silviya Lavrova, Bogdana Koumanova. Influence of recirculation in a lab-scale vertical flow constructed wetland on the treatment efficiency of landfill leachate[J]. Bioresource Technology, 2010, 101: 1756-1761.

DOI: 10.1016/j.biortech.2009.10.028

Google Scholar

[13] JI Bing. Study on cco-pond and wetland coupled system deal with surface water in Chongming of Shanghai [D]. Donghua University, (2010).

Google Scholar