Performance of constructed wetlands with different substrates for the treated effluent from municipal sewage plants
Author(s) -
Shiwei Cao,
Zhao Jing,
Peng Yuan,
Yue Wang,
Yin Wang
Publication year - 2019
Publication title -
journal of water reuse and desalination
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.548
H-Index - 16
eISSN - 2408-9370
pISSN - 2220-1319
DOI - 10.2166/wrd.2019.032
Subject(s) - effluent , denitrifying bacteria , pollutant , denitrification , environmental engineering , biofilter , environmental science , sewage , macrophyte , wastewater , substrate (aquarium) , wetland , submersion (mathematics) , phosphorus , environmental chemistry , sewage treatment , pulp and paper industry , nitrogen , chemistry , ecology , biology , engineering , mathematical analysis , mathematics , organic chemistry , differentiable function
Constructed wetlands (CWs) are effective as an advanced treatment process for the treated effluent of municipal wastewater plants. An appropriate substrate, suitable macrophytes, and proper operation are crucial for pollutant abatement. In this research, three subsurface flow CWs with various substrates were investigated. Pollutants abatement efficiency under various operational schemes were analyzed. The results showed that the satisfactory hydraulic loading rate was 0.25 m3/(m2·d). When the C/N ratio of influent was adjusted to 5.87 by adding a carbon source, the denitrification and dephosphorization efficiency would be improved, with 7–8 mg/L for total nitrogen (TN) and 0.4 mg/L for total phosphorus (TP) in the effluent, which can achieve the Class 1A Discharge Standard for discharge to natural waterways in China. A greater depth of submersion for the substrate layer resulted in a more conducive environment for the abatement of nitrogen substances. However, a 40-cm depth of submersion in CWs results in better removal efficiency of TN and TP. A plastic ring substrate (PRS) contains biological enzyme promoter formula, which was conducive to nitrifying and denitrifying bacteria. The biofilm affinity and coordination with plants made the PRS more effective than the other two substrates, especially for NO3–-N and TN abatement efficiency.
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