Hydrodynamic resistance of a yeast clog

Fuente: arXiv
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Main Authors: Desclaux, Térence, Santana, Leonardo, Verdeille, Inès, Duru, Paul, Joseph, Pierre, Delarue, Morgan, Liot, Olivier
Format: Preprint
Published: 2023
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author Desclaux, Térence
Santana, Leonardo
Verdeille, Inès
Duru, Paul
Joseph, Pierre
Delarue, Morgan
Liot, Olivier
author_facet Desclaux, Térence
Santana, Leonardo
Verdeille, Inès
Duru, Paul
Joseph, Pierre
Delarue, Morgan
Liot, Olivier
contents Bioclogging, the clogging of pores with living particles, is a complex process that involves various coupled mechanisms such as hydrodynamics and particle properties. This article explores bioclogging at the microscale level. At this scale, the flow rates are very low (< 100 nL/min), so a dedicated method is elaborated to measure them with high accuracy (< 6.7% error), robustness, and low response time (< 0.2s). This method employed a microfluidic device with two identical channels: a first one for a yeast suspension and a second one for a colored culture medium. These channels merged into a single wide outlet channel, where the interface of the two fluids could be monitored. As a yeast clog formed in the first channel, the displacement of the interface between the two media was imaged and compared to a pre-calibrated image database, quantifying the flow through the clog. The hydraulic resistance of a yeast clog is then quantified under two different conditions: filtration under constant pressure and oscillating pressure (backflush cycles). In both cases, the resistance increases with the clog length. At constant pressure, the clog's permeability decreased with increased operating pressure, with no detectable changes in cell density as assessed through fluorescence imaging. In contrast, backflush cycles resulted in an approximately four times higher permeability, associated with a significant non-monotonic decrease in cell density with the operating pressure. The better understanding of the fluid-structure interplay allowed us to develop a novel physical modeling of the flow in a soft and confined porous medium that challenged the empirical power-law description used in bioclogging theory by accurately replicating the measured permeability-pressure variations.
format Preprint
id arxiv_https___arxiv_org_abs_2309_17137
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Hydrodynamic resistance of a yeast clog
Desclaux, Térence
Santana, Leonardo
Verdeille, Inès
Duru, Paul
Joseph, Pierre
Delarue, Morgan
Liot, Olivier
Fluid Dynamics
Soft Condensed Matter
Biological Physics
Bioclogging, the clogging of pores with living particles, is a complex process that involves various coupled mechanisms such as hydrodynamics and particle properties. This article explores bioclogging at the microscale level. At this scale, the flow rates are very low (< 100 nL/min), so a dedicated method is elaborated to measure them with high accuracy (< 6.7% error), robustness, and low response time (< 0.2s). This method employed a microfluidic device with two identical channels: a first one for a yeast suspension and a second one for a colored culture medium. These channels merged into a single wide outlet channel, where the interface of the two fluids could be monitored. As a yeast clog formed in the first channel, the displacement of the interface between the two media was imaged and compared to a pre-calibrated image database, quantifying the flow through the clog. The hydraulic resistance of a yeast clog is then quantified under two different conditions: filtration under constant pressure and oscillating pressure (backflush cycles). In both cases, the resistance increases with the clog length. At constant pressure, the clog's permeability decreased with increased operating pressure, with no detectable changes in cell density as assessed through fluorescence imaging. In contrast, backflush cycles resulted in an approximately four times higher permeability, associated with a significant non-monotonic decrease in cell density with the operating pressure. The better understanding of the fluid-structure interplay allowed us to develop a novel physical modeling of the flow in a soft and confined porous medium that challenged the empirical power-law description used in bioclogging theory by accurately replicating the measured permeability-pressure variations.
title Hydrodynamic resistance of a yeast clog
topic Fluid Dynamics
Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2309.17137