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Dataset belonging to " A Comprehensive Methodology for Estimating Yearly Plastic Pollution Loads in Rivers"

Zenodo (CERN European Organization for Nuclear Research) 2026
Stephanie B. Oswald, Esmee S. Oldenhof, Ad M.J. Ragas, Margriet M. Schoor, F.P.L. Collas

Summary

Scientists created a new way to measure how much plastic pollution flows through rivers each year, and tested it on the Rhine and Meuse rivers in the Netherlands. They found hundreds of millions of plastic pieces flow through these waterways annually, with pollution levels dropping as rivers flow downstream — likely because plastic settles out, breaks down, or gets removed along the way. This matters because rivers carry plastic pollution toward oceans and drinking water sources, and better measurement tools like this one can help track how effective cleanup and prevention efforts really are.

Study Type Environmental

In this study, we developed a method for quantifying yearly macro- and mesoplastic load, incorporating different metrics. By integrating statistical analysis, the method accounts for variability in plastic concentrations and discharge rates. Subsequently, this methodology was applied to the Rhine and Meuse rivers in the Netherlands. The findings of this study indicate a spatial variability in plastic concentrations. The mean annual load of macro- and mesoplastics (items > 0.5 cm) in the Rhine was highest at Lobith, located at the Germany–Netherlands border (331 million items/year), decreasing downstream to 206 million items/year at Tiel. Similarly, in the Meuse, higher loads were observed at Eijsden, at the Belgium–Netherlands border (73 million items/year), than further downstream at Sambeek (62 million items/year), while particles in the 5–6 mm size range are likely underrepresented due to the 6 mm mesh size of the sampling net. Correspondingly, the mean annual surface area load of macro- and mesoplastics in the Meuse showed a downstream decrease, with mean values declining from 71,641.63 m²/year at Eijsden to 30,714.92 m²/year at Sambeek. The methodological approach enables the quantification of plastic loads, providing important insights into the dynamics of plastic pollution in river systems. This allows for predictions of future plastic quantities in the Rhine-Waal and Meuse rivers under different emission scenarios and measurement units.

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