Turbulent Pipe Flow of Thixotropic Fluids

Fuente: arXiv
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Main Authors: Yousuf, Noman, Lester, Daniel, Rudman, Murray, Dentz, Marco, Eshtiaghi, Nicky
Format: Preprint
Published: 2025
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author Yousuf, Noman
Lester, Daniel
Rudman, Murray
Dentz, Marco
Eshtiaghi, Nicky
author_facet Yousuf, Noman
Lester, Daniel
Rudman, Murray
Dentz, Marco
Eshtiaghi, Nicky
contents Complex materials with internal microstructure such as suspensions and emulsions exhibit time-dependent rheology characterized by viscoelasticity and thixotropy. In many large-scale applications such as turbulent pipe flow, the elastic response occurs on a much shorter timescale than the thixotropy, hence these flows are purely thixotropic. The fundamental dynamics of thixotropic turbulence is poorly understood, particularly the interplay between microstructural state, rheology, and turbulence structure. To address this gap, we conduct direct numerical simulations (DNS) of fully developed turbulent pipe flow of a model thixotropic (Moore) fluid over a range of thixoviscous numbers $Λ$ from slow ($Λ\ll 1$) to fast ($Λ\gg 1$) thixotropic kinetics relative to the eddy turnover time. Analysis of DNS results in the Lagrangian frame shows that, as expected, in the limits of slow and fast kinetics, these time-dependent flows behave as time-independent purely viscous (generalized Newtonian) analogues. For intermediate kinetics ($Λ\sim 1$), the rheology is governed by a \emph{path integral} of the thixotropic fading memory kernel over the distribution of Lagrangian shear history, the latter of which is modelled via a simple stochastic model for the radially non-stationary pipe flow. DNS computations based on this effective viscosity closure exhibit excellent agreement (within 2.4\% error) with the fully thixotropic model for $Λ=1$, indicating that the purely viscous (generalized Newtonian) analogue persists for arbitrary values of $Λ\in[0,\infty^+)$ and across nonlinear rheology models. These results uncover the feedback mechanisms between microstructure, rheology, and turbulence and offer fundamental insights into the structure of thixotropic turbulence.
format Preprint
id arxiv_https___arxiv_org_abs_2501_01597
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Turbulent Pipe Flow of Thixotropic Fluids
Yousuf, Noman
Lester, Daniel
Rudman, Murray
Dentz, Marco
Eshtiaghi, Nicky
Fluid Dynamics
Complex materials with internal microstructure such as suspensions and emulsions exhibit time-dependent rheology characterized by viscoelasticity and thixotropy. In many large-scale applications such as turbulent pipe flow, the elastic response occurs on a much shorter timescale than the thixotropy, hence these flows are purely thixotropic. The fundamental dynamics of thixotropic turbulence is poorly understood, particularly the interplay between microstructural state, rheology, and turbulence structure. To address this gap, we conduct direct numerical simulations (DNS) of fully developed turbulent pipe flow of a model thixotropic (Moore) fluid over a range of thixoviscous numbers $Λ$ from slow ($Λ\ll 1$) to fast ($Λ\gg 1$) thixotropic kinetics relative to the eddy turnover time. Analysis of DNS results in the Lagrangian frame shows that, as expected, in the limits of slow and fast kinetics, these time-dependent flows behave as time-independent purely viscous (generalized Newtonian) analogues. For intermediate kinetics ($Λ\sim 1$), the rheology is governed by a \emph{path integral} of the thixotropic fading memory kernel over the distribution of Lagrangian shear history, the latter of which is modelled via a simple stochastic model for the radially non-stationary pipe flow. DNS computations based on this effective viscosity closure exhibit excellent agreement (within 2.4\% error) with the fully thixotropic model for $Λ=1$, indicating that the purely viscous (generalized Newtonian) analogue persists for arbitrary values of $Λ\in[0,\infty^+)$ and across nonlinear rheology models. These results uncover the feedback mechanisms between microstructure, rheology, and turbulence and offer fundamental insights into the structure of thixotropic turbulence.
title Turbulent Pipe Flow of Thixotropic Fluids
topic Fluid Dynamics
url https://arxiv.org/abs/2501.01597