Tracking the rotation of light magnetic particles in turbulence

Fuente: arXiv
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Main Authors: Wu, Chunlai, Kunnen, Rudie P. J., Wang, Ziqi, de Wit, Xander M., Toschi, Federico, Clercx, Herman J. H.
Format: Preprint
Published: 2025
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author Wu, Chunlai
Kunnen, Rudie P. J.
Wang, Ziqi
de Wit, Xander M.
Toschi, Federico
Clercx, Herman J. H.
author_facet Wu, Chunlai
Kunnen, Rudie P. J.
Wang, Ziqi
de Wit, Xander M.
Toschi, Federico
Clercx, Herman J. H.
contents Particle-laden turbulence involves complex interactions between the dispersed and continuous phases. Given that particles can exhibit a wide range of properties, such as varying density, size, and shape, their interplay with the flow can lead to various modifications of the turbulence. Therefore, understanding the dynamics of particles is a necessary first step toward revealing the behavior of the multiphase system. Within the context of particle dynamics, accurately resolving rotational motion presents a significantly greater challenge compared to translational motion. We propose an experimental method to track the rotational motion of spherical, light, and magnetic particles with sizes significantly smaller than the Taylor microscale, typically an order of magnitude larger than the Kolmogorov scale of the turbulence in which they are suspended. The method fully resolves all three components of the particle angular velocity using only 2D images acquired from a single camera. This technique enables a detailed investigation of the rotational dynamics of magnetic particles subjected simultaneously to small-scale turbulent structures and external magnetic forcing. Beyond advancing the study of particle dynamics in turbulence, this approach opens new possibilities for actively modulating turbulence through externally applied magnetic fields.
format Preprint
id arxiv_https___arxiv_org_abs_2506_21769
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tracking the rotation of light magnetic particles in turbulence
Wu, Chunlai
Kunnen, Rudie P. J.
Wang, Ziqi
de Wit, Xander M.
Toschi, Federico
Clercx, Herman J. H.
Fluid Dynamics
Particle-laden turbulence involves complex interactions between the dispersed and continuous phases. Given that particles can exhibit a wide range of properties, such as varying density, size, and shape, their interplay with the flow can lead to various modifications of the turbulence. Therefore, understanding the dynamics of particles is a necessary first step toward revealing the behavior of the multiphase system. Within the context of particle dynamics, accurately resolving rotational motion presents a significantly greater challenge compared to translational motion. We propose an experimental method to track the rotational motion of spherical, light, and magnetic particles with sizes significantly smaller than the Taylor microscale, typically an order of magnitude larger than the Kolmogorov scale of the turbulence in which they are suspended. The method fully resolves all three components of the particle angular velocity using only 2D images acquired from a single camera. This technique enables a detailed investigation of the rotational dynamics of magnetic particles subjected simultaneously to small-scale turbulent structures and external magnetic forcing. Beyond advancing the study of particle dynamics in turbulence, this approach opens new possibilities for actively modulating turbulence through externally applied magnetic fields.
title Tracking the rotation of light magnetic particles in turbulence
topic Fluid Dynamics
url https://arxiv.org/abs/2506.21769