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Autores principales: Dikareva, Nadia, Simon, Kevin
Formato: Recurso digital
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Publicado: Zenodo 2024
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Acceso en línea:https://doi.org/10.5281/zenodo.18389251
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author Dikareva, Nadia
Simon, Kevin
author_facet Dikareva, Nadia
Simon, Kevin
contents Rivers and streams are the primary conduits through which microplastic pollution moves from land to sea. Attributes of the plastic and of the streams are both likely to influence how microplastic moves, but there are few empirical studies of plastic transport dynamics in real systems. We adapted the spiralling technique commonly used to measure nutrient cycling in streams to quantify transport distances and deposition velocities of microplastics in streams with varying geomorphological structure and level of human modification. We conducted pulse releases of trace amounts of three size classes of five different polymers spanning a density gradient in fifteen streams. The streams were typical of the range of human modification in urban environments, from semi-natural to highly modified. A range of geomorphological and hydrological parameters were quantified in each stream. Transport distances of microplastic ranged from Also see: https://micro2024.sciencesconf.org/558661/document
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_18389251
institution Zenodo
language
publishDate 2024
publisher Zenodo
record_format zenodo
spellingShingle Transport dynamics of microplastics from land to sea: the role of particle properties and stream morphology.
Dikareva, Nadia
Simon, Kevin
Microplastic
deposition
retention
stream modification
transport
Rivers and streams are the primary conduits through which microplastic pollution moves from land to sea. Attributes of the plastic and of the streams are both likely to influence how microplastic moves, but there are few empirical studies of plastic transport dynamics in real systems. We adapted the spiralling technique commonly used to measure nutrient cycling in streams to quantify transport distances and deposition velocities of microplastics in streams with varying geomorphological structure and level of human modification. We conducted pulse releases of trace amounts of three size classes of five different polymers spanning a density gradient in fifteen streams. The streams were typical of the range of human modification in urban environments, from semi-natural to highly modified. A range of geomorphological and hydrological parameters were quantified in each stream. Transport distances of microplastic ranged from Also see: https://micro2024.sciencesconf.org/558661/document
title Transport dynamics of microplastics from land to sea: the role of particle properties and stream morphology.
topic Microplastic
deposition
retention
stream modification
transport
url https://doi.org/10.5281/zenodo.18389251