Air-driven dynamics of viscoplastic liquid layers

Fuente: arXiv
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Main Authors: Shemilt, James D., Balmforth, Neil J., Hewitt, Duncan R.
Format: Preprint
Published: 2025
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author Shemilt, James D.
Balmforth, Neil J.
Hewitt, Duncan R.
author_facet Shemilt, James D.
Balmforth, Neil J.
Hewitt, Duncan R.
contents Airway clearance by coughing is a key mechanism for mucus transport, particularly in obstructive lung diseases associated with altered mucus rheology. We investigate the dynamics of a viscoplastic liquid film driven by flow in a turbulent air layer, which is a model for air-driven mucus transport that incorporates yield-stress effects. Our theoretical analysis is based on a long-wave model for the liquid film flow, and we complement this with experiments, in which layers of Newtonian and yield-stress liquids are exposed to air flow in a rectangular duct. We demonstrate how perturbations to the layer depth can lead to localised yielding and wave generation. Rapid wave growth occurs when the fluid ahead of the oncoming wave is unyielded, so that as the wave propagates, it consumes this static fluid while depositing a much thinner film behind. This mechanism causes dramatic "blow-out" events in experiments, where liquid hits the roof of the tank. By contrast, in Newtonian thin films, multiple surface waves typically form, and blow-out only occurs in experiments when a Newtonian film is sufficiently thick.
format Preprint
id arxiv_https___arxiv_org_abs_2510_21146
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Air-driven dynamics of viscoplastic liquid layers
Shemilt, James D.
Balmforth, Neil J.
Hewitt, Duncan R.
Fluid Dynamics
Airway clearance by coughing is a key mechanism for mucus transport, particularly in obstructive lung diseases associated with altered mucus rheology. We investigate the dynamics of a viscoplastic liquid film driven by flow in a turbulent air layer, which is a model for air-driven mucus transport that incorporates yield-stress effects. Our theoretical analysis is based on a long-wave model for the liquid film flow, and we complement this with experiments, in which layers of Newtonian and yield-stress liquids are exposed to air flow in a rectangular duct. We demonstrate how perturbations to the layer depth can lead to localised yielding and wave generation. Rapid wave growth occurs when the fluid ahead of the oncoming wave is unyielded, so that as the wave propagates, it consumes this static fluid while depositing a much thinner film behind. This mechanism causes dramatic "blow-out" events in experiments, where liquid hits the roof of the tank. By contrast, in Newtonian thin films, multiple surface waves typically form, and blow-out only occurs in experiments when a Newtonian film is sufficiently thick.
title Air-driven dynamics of viscoplastic liquid layers
topic Fluid Dynamics
url https://arxiv.org/abs/2510.21146