Shape matters: long-range transport of microplastic fibers in the atmosphere

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Tatsii, Daria, Bucci, Silvia, Bhowmick, Taraprasad, Guettler, Johannes, Bakels, Lucie, Bagheri, Gholamhossein, Stohl, Andreas
Natura: Preprint
Pubblicazione: 2023
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866909176942297088
author Tatsii, Daria
Bucci, Silvia
Bhowmick, Taraprasad
Guettler, Johannes
Bakels, Lucie
Bagheri, Gholamhossein
Stohl, Andreas
author_facet Tatsii, Daria
Bucci, Silvia
Bhowmick, Taraprasad
Guettler, Johannes
Bakels, Lucie
Bagheri, Gholamhossein
Stohl, Andreas
contents Deposition of giant microplastic particles from the atmosphere has been observed in the most remote places on Earth. However, their deposition patterns are difficult to reproduce using current atmospheric transport models. These models usually treat particles as perfect spheres, whereas the real shapes of microplastic particles are often far from spherical. Such particles experience lower settling velocities compared to volume-equivalent spheres, leading to longer atmospheric transport. Here, we present novel laboratory experiments on the gravitational settling of microplastic fibers in air and find that their settling velocities are reduced by up to 76% compared to spheres of the same volume. An atmospheric transport model constrained with the experimental data shows that shape-corrected settling velocities significantly increase the horizontal and vertical transport of particles. Our model results show that microplastic fibers of about 1 mm length emitted in populated areas can reach extremely remote regions of the globe, including the High Arctic, which is not the case for spheres. We also calculate that fibers with lengths of up to 100 μm settle slowly enough to be lifted high into the stratosphere, where degradation by ultraviolet radiation may release chlorine and bromine, thus potentially damaging the stratospheric ozone layer. These findings suggest that the growing environmental burden and still increasing emissions of plastics pose multiple threats to life on Earth.
format Preprint
id arxiv_https___arxiv_org_abs_2308_11498
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Shape matters: long-range transport of microplastic fibers in the atmosphere
Tatsii, Daria
Bucci, Silvia
Bhowmick, Taraprasad
Guettler, Johannes
Bakels, Lucie
Bagheri, Gholamhossein
Stohl, Andreas
Atmospheric and Oceanic Physics
Fluid Dynamics
Deposition of giant microplastic particles from the atmosphere has been observed in the most remote places on Earth. However, their deposition patterns are difficult to reproduce using current atmospheric transport models. These models usually treat particles as perfect spheres, whereas the real shapes of microplastic particles are often far from spherical. Such particles experience lower settling velocities compared to volume-equivalent spheres, leading to longer atmospheric transport. Here, we present novel laboratory experiments on the gravitational settling of microplastic fibers in air and find that their settling velocities are reduced by up to 76% compared to spheres of the same volume. An atmospheric transport model constrained with the experimental data shows that shape-corrected settling velocities significantly increase the horizontal and vertical transport of particles. Our model results show that microplastic fibers of about 1 mm length emitted in populated areas can reach extremely remote regions of the globe, including the High Arctic, which is not the case for spheres. We also calculate that fibers with lengths of up to 100 μm settle slowly enough to be lifted high into the stratosphere, where degradation by ultraviolet radiation may release chlorine and bromine, thus potentially damaging the stratospheric ozone layer. These findings suggest that the growing environmental burden and still increasing emissions of plastics pose multiple threats to life on Earth.
title Shape matters: long-range transport of microplastic fibers in the atmosphere
topic Atmospheric and Oceanic Physics
Fluid Dynamics
url https://arxiv.org/abs/2308.11498