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Título : Greenhouse gas dynamics in an urbanized river system: influence of water quality and land use
Autor: Ho, Long
Jerves Cobo, Ruben Fernando
Barthel, Matti
Seis, Johan
Bodé, Samuel
Boeckx, Pascal
Goethals, Pedro
Palabras clave : Ecuador
Greenhouse gas
Land use type
Urban river
Water quality
Environmental chemistry
General medicine
Health
Toxicology and mutagenesis
Pollution
Área de conocimiento FRASCATI amplio: 1. Ciencias Naturales y Exactas
Área de conocimiento FRASCATI detallado: 1.5.10 Recursos Hídricos
Área de conocimiento FRASCATI específico: 1.5 Ciencias de la Tierra y el Ambiente
Área de conocimiento UNESCO amplio: 05 - Ciencias Físicas, Ciencias Naturales, Matemáticas y Estadísticas
ÁArea de conocimiento UNESCO detallado: 0521 - Ciencias Ambientales
Área de conocimiento UNESCO específico: 052 - Medio Ambiente
Fecha de publicación : 2022
Fecha de fin de embargo: 30-dic-2050
Volumen: Volumen 29, número 25
Fuente: Environmental Science and Pollution Research
metadata.dc.identifier.doi: 10.1007/s11356-021-18081-2
Tipo: ARTÍCULO
Abstract: 
Rivers act as a natural source of greenhouse gases (GHGs). However, anthropogenic activities can largely alter the chemical composition and microbial communities of rivers, consequently affecting their GHG production. To investigate these impacts, we assessed the accumulation of CO2, CH4, and N2O in an urban river system (Cuenca, Ecuador). High variation of dissolved GHG concentrations was found among river tributaries that mainly depended on water quality and land use. By using Prati and Oregon water quality indices, we observed a clear pattern between water quality and the dissolved GHG concentration: the more polluted the sites were, the higher were their dissolved GHG concentrations. When river water quality deteriorated from acceptable to very heavily polluted, the mean value of pCO2 and dissolved CH4 increased by up to ten times while N2O concentrations boosted by 15 times. Furthermore, surrounding land-use types, i.e., urban, roads, and agriculture, could considerably affect the GHG production in the rivers. Particularly, the average pCO2 and dissolved N2O of the sites close to urban areas were almost four times higher than those of the natural sites while this ratio was 25 times in case of CH4, reflecting the finding that urban areas had the worst water quality with almost 70% of their sites being polluted while this proportion of nature areas was only 12.5%. Lastly, we identified dissolved oxygen, ammonium, and flow characteristics as the main important factors to the GHG production by applying statistical analysis and random forests. These results highlighted the impacts of land-use types on the production of GHGs in rivers contaminated by sewage discharges and surface runoff.
URI : https://www.scopus.com/record/display.uri?eid=2-s2.0-85123239348&origin=resultslist&sort=plf-f&src=s&st1=Greenhouse+gas+dynamics+in+an+urbanized+river+system%3a+influence+of+water+quality+and+land+use&sid=8dcded6beb39da4b1b8e30b7784b0f26&sot=b&sdt=b&sl=108&s=TITLE-ABS-KEY%28Greenhouse+gas+dynamics+in+an+urbanized+river+system%3a+influence+of+water+quality+and+land+use%29&relpos=0&citeCnt=0&searchTerm=&featureToggles=FEATURE_NEW_DOC_DETAILS_EXPORT:1
URI Fuente: https://link.springer.com/journal/11356/volumes-and-issues/29-25
ISSN : 0944-1344
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