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Effect of swimming mode on shielding of odor traces in turbulence

Martin James et al · American Physical Society · 2026

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Marine organisms manipulate their surrounding flow through their swimming dynamics, which affects the transport of their own odor cues. We demonstrate by direct numerical simulations how a group of swimmers, moving at intermediate Reynolds numbers, immersed in a turbulent flow, alter the shape of the odor plume they release in the water. Odor mixing is enhanced by increased velocity fluctuations and a swimmer-induced flow circulation that widens the odor plume at close range while speeding up dilution of the chemical trace. Beyond a short-range increase in the likelihood of being detected, swimming considerably reduces detections with effects that can persist at distances on the order of ten times the size of the group or more. We find that pullerlike swimmers are more effective at olfactory shielding than pusherlike swimmers. We trace this difference back to the dynamics at the swimmer location, which tends to trap odor at the source for pushers and to dilute it for pullers. Olfactory shielding is robust to changes in the conditions, and is more pronounced for weak turbulent Reynolds numbers and large swimmer Reynolds numbers. Our results suggest that olfactory shielding may play a role in the emergence of different swimming modalities by marine organisms.

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APA 7

al, M. J. E. (2026). Effect of swimming mode on shielding of odor traces in turbulence. https://doi.org/10.1103/yxzj-jhk7

MLA

al, Martin James et. "Effect of swimming mode on shielding of odor traces in turbulence." 2026. https://doi.org/10.1103/yxzj-jhk7.

Chicago

al, Martin James et. 2026. "Effect of swimming mode on shielding of odor traces in turbulence.". https://doi.org/10.1103/yxzj-jhk7.

Harvard

al, M. J. E. 2026, Effect of swimming mode on shielding of odor traces in turbulence, American Physical Society, available at: https://doi.org/10.1103/yxzj-jhk7 [Accessed 29 Jun. 2026].

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Título
Effect of swimming mode on shielding of odor traces in turbulence
Autor / colaboradores
Martin James et al
Editorial
American Physical Society
Año de publicación
2026
ISSN
2643-1564
ISSN
2643-1564
Idioma
eng
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