首页|Phosphorus removal efficiency by in-stream constructed wetlands treating agricultural runoff: Influence of vegetation and design

Phosphorus removal efficiency by in-stream constructed wetlands treating agricultural runoff: Influence of vegetation and design

扫码查看
With population growth, demand for agricultural products has increased, which affects agriculture, fertiliser use and land management. Due to nutrient inputs from arable areas, the water quality of rivers and lakes near agricultural lands has deteriorated. Constructed wetlands (CWs) are one of the measures used to improve water quality through natural water treatment processes. We studied phosphorus removal in relation to environmental characteristics in five in-stream free surface flow CWs in Finland, Estonia and Latvia. Wetland/catchment area ratios varied from 0.1% to 5%. Three CWs were covered in dense vegetation. On average, the Vanda CW and Hovi CW TP removal efficiency throughout the study period were highest (32.1 ± 3.6% and 34.9 ± 4.4%, respectively) among all studied CWs. Nummela Gateway CW, Rantamo-Seitteli CW and Mezaciruli CW showed lower TP removal efficiency and on many occasions the outflow concentration exceeded the inflow concentration in Rantamo-Seitteli and Mezaciruli CW. Vegetation cover emerged as the most important factor in the treatment efficiency of in-stream CWs, reducing flow rate, increasing water retention time and decreasing probability of the CW becoming a source of phosphorus during flood events.

Phosphorus removalVegetation developmentFlow rateDiffuse agricultural pollutionVegetation coverage

Jari Koskiaho、Keit Kill、Linda Grinberga

展开 >

Finnish Environment Institute, Latokartanonkaari 11, FIN-00790 Helsinki, Finland

Department of Geography, Institute of Ecology and Earth Sciences, University of Tartu, Vanemuise 46, Tartu 51014, Estonia

Latvia University of Life Sciences and Technologies, Akademijas Str.19, Jelgava 3001, Latvia

2022

Ecological engineering

Ecological engineering

EISCI
ISSN:0925-8574
年,卷(期):2022.180
  • 4
  • 55