On the fully coupled dynamics of flexible fibres dispersed in modulated turbulence
Stefano Olivieri, Andrea Mazzino, Marco E. Rosti

TL;DR
This study uses direct numerical simulations to explore how elastic, inertial fibres interact with and modify turbulence in a fluid flow, revealing a dominant turbulence modulation mechanism influenced mainly by fibre concentration.
Contribution
It provides a comprehensive analysis of the coupled dynamics of flexible fibres and turbulence, including the effects of fibre properties and concentration on flow modulation and fibre behavior.
Findings
Fibre concentration primarily controls turbulence modulation.
Fibres exhibit only two flapping states despite flow modifications.
Maximum fibre curvature follows distinct scaling laws.
Abstract
The present work investigates the mechanical behaviour of finite-size, elastic and inertial fibres freely moving in a homogeneous and isotropic turbulent flow at moderate Reynolds number. Fully-resolved, direct numerical simulations, based on a finite difference discretisation and the immersed boundary method, are performed to mutually couple the dynamics of fibres and fluid turbulence, allowing to account for the backreaction of the dispersed phase to the carrier flow. An extensive parametric study is carried out over the characteristic properties of the suspension, i.e., fibre's linear density (from neutrally-buoyant to heavy fibres), length (from short fibres comparable with the dissipative scale to long fibres comparable with the integral scale) and bending stiffness (from highly flexible to almost rigid fibres), as well as the concentration (from dilute to non-dilute suspensions).…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows · Blood properties and coagulation · Sports Dynamics and Biomechanics
