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Microplastics distribution in river side bars: The combined effects of water level and wind intensity

The Science of The Total Environment 2023 22 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Nicolás Garello, Nicolás Garello, Nicolás Garello, Martín C. M. Blettler, Martín C. M. Blettler, Martín C. M. Blettler, Martín C. M. Blettler, Pierre Girard, Martín C. M. Blettler, Martín C. M. Blettler, Guido N. Rimondino Pierre Girard, Pierre Girard, Pierre Girard, Guido N. Rimondino Pierre Girard, Nicolás Garello, Nicolás Garello, Martín C. M. Blettler, Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Ana P. Rabuffetti, Luis A. Espínola, Luis A. Espínola, Luis A. Espínola, Guido N. Rimondino Stéphane Rodrigues, Pierre Girard, Guido N. Rimondino Nicolás Garello, Guido N. Rimondino Pierre Girard, Guido N. Rimondino Martín C. M. Blettler, Martín C. M. Blettler, Guido N. Rimondino Pierre Girard, Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Ana P. Rabuffetti, Stéphane Rodrigues, Guido N. Rimondino Fabio E. Malanca, Guido N. Rimondino Fabio E. Malanca, Luis A. Espínola, Luis A. Espínola, Martín C. M. Blettler, Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Karl M. Wantzen, Guido N. Rimondino Guido N. Rimondino Luis A. Espínola, Guido N. Rimondino Fabio E. Malanca, Karl M. Wantzen, Fabio E. Malanca, Karl M. Wantzen, Nicolás Garello, Fabio E. Malanca, Fabio E. Malanca, Fabio E. Malanca, Fabio E. Malanca, Karl M. Wantzen, Guido N. Rimondino Guido N. Rimondino Martín C. M. Blettler, Luis A. Espínola, Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Guido N. Rimondino Martín C. M. Blettler, Karl M. Wantzen, Fabio E. Malanca, Fabio E. Malanca, Fabio E. Malanca, Fabio E. Malanca, Ana P. Rabuffetti, Ana P. Rabuffetti, Pierre Girard, Pierre Girard, Guido N. Rimondino Fabio E. Malanca, Fabio E. Malanca, Martín C. M. Blettler, Pierre Girard, Pierre Girard, Guido N. Rimondino Fabio E. Malanca, Fabio E. Malanca, Fabio E. Malanca, Guido N. Rimondino Fabio E. Malanca, Martín C. M. Blettler, Guido N. Rimondino

Summary

This study examined how seasonal water level fluctuations and wind intensity affect the distribution of microplastics in river side bars, finding that both hydrometric and wind conditions significantly influence microplastic deposition and remobilization in fluvial sediment deposits.

Polymers
Study Type Environmental

Rivers are the main pathway for microplastics (MP) transport toward the ocean. However, the understanding of the processes involved in the deposition and mobilization of MP in rivers, specifically in sediment side bars (SB), remains very limited. The objectives of this study were: (i) to examine the effect of hydrometric fluctuations and wind intensity on the distribution of microplastics (MP < 5 mm) in the SB of large river (the Paraná River), (ii) to determine the characteristics of MP to infer their origin and fate, and (iii) to discuss potential similarities or differences between MP suspended in the water column and MP found in sediment. The SB and water column were sampled during the autumn, winter, and spring of 2018, and the summer of 2019 at different river discharges and wind intensities. >90 % of the MP items found were fiber of polyethylene terephthalate (PET; FT-IR analysis), the most common MP color was blue, and most were in the 0.5-2 mm size range. The concentration/composition of MP varied according to the river discharge and wind intensity. During the falling limb of the hydrograph when discharge is decreasing and sediments are exposed for short periods (13-30 days), MP particles transported by the flow were deposited on temporarily exposed SB, accumulating there in high densities (309-373 items/kg). However, during the drought, when sediments remained exposed for a long time (259 days), MP were mobilized and transported by the wind. During this period (no influence of the flow), MP densities significantly decreased on SB (39-47 items/kg). In conclusion, both hydrological fluctuations and wind intensity played a significant role in MP distribution in SB.

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