Interaction regimes of a vortex ring and an inertial particle.

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Bibliographic Details
Title: Interaction regimes of a vortex ring and an inertial particle.
Authors: de Aquino, Guilherme Siqueira1 (AUTHOR), Viroulet, Sylvain1 (AUTHOR) sylvain.viroulet@imft.fr, Sasso, Nicolas1 (AUTHOR), Albagnac, Julie1 (AUTHOR)
Source: Journal of Fluid Mechanics. 12/10/2025, Vol. 1024, p1-28. 28p.
Subjects: Vortex tubes, Particle motion, Dimensionless numbers, Empirical research, Numerical analysis
Abstract: The interaction between a coherent vortex ring and an inertial particle is studied through a combination of experimental and numerical methods. The vortex ring is chosen as a model flow ubiquitous in various geophysical and industrial flows. A detailed description of the vortex properties together with the evolution of the particle kinematics during the interaction is addressed thanks to time-resolved particle image velocimetry and three-dimensional shadowgraphy visualisations. Complementary, direct numerical simulations are realised with a one-way coupling model for the particle, allowing for the identification of the elementary forces responsible for the interaction behaviours. The experimental and numerical results unequivocally demonstrate the existence of three distinct interaction regimes in the parameter range of the present study: simple deviation, strong deviation and capture. These regimes are delineated as functions of key controlled dimensionless parameters, namely, the Stokes number and the initial radial position of the particle relative to the vortex ring axis of propagation. [ABSTRACT FROM AUTHOR]
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Database: Engineering Source
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Abstract:The interaction between a coherent vortex ring and an inertial particle is studied through a combination of experimental and numerical methods. The vortex ring is chosen as a model flow ubiquitous in various geophysical and industrial flows. A detailed description of the vortex properties together with the evolution of the particle kinematics during the interaction is addressed thanks to time-resolved particle image velocimetry and three-dimensional shadowgraphy visualisations. Complementary, direct numerical simulations are realised with a one-way coupling model for the particle, allowing for the identification of the elementary forces responsible for the interaction behaviours. The experimental and numerical results unequivocally demonstrate the existence of three distinct interaction regimes in the parameter range of the present study: simple deviation, strong deviation and capture. These regimes are delineated as functions of key controlled dimensionless parameters, namely, the Stokes number and the initial radial position of the particle relative to the vortex ring axis of propagation. [ABSTRACT FROM AUTHOR]
ISSN:00221120
DOI:10.1017/jfm.2025.10909