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Hydrodynamic resistance and mobility of deformable objects in microfluidic channels
P. Sajeesh,
Published in American Institute of Physics Inc.
2014
Volume: 8
   
Issue: 5
Abstract
This work reports experimental and theoretical studies of hydrodynamic behaviour of deformable objects such as droplets and cells in a microchannel. Effects of mechanical properties including size and viscosity of these objects on their deformability, mobility, and induced hydrodynamic resistance are investigated. The experimental results revealed that the deformability of droplets, which is quantified in terms of deformability index (D.I.), depends on the droplet-to-channel size ratio q and droplet-to-medium viscosity ratio k. Using a large set of experimental data, for the first time, we provide a mathematical formula that correlates induced hydrodynamic resistance of a single droplet DRd with the droplet size q and viscosity k. A simple theoretical model is developed to obtain closed form expressions for droplet mobility / and DRd. The predictions of the theoretical model successfully confront the experimental results in terms of the droplet mobility / and induced hydrodynamic resistance DRd. Numerical simulations are carried out using volume-of-fluid model to predict droplet generation and deformation of droplets of different size ratio q and viscosity ratio k, which compare well with that obtained from the experiments. In a novel effort, we performed experiments to measure the bulk induced hydrodynamic resistance DR of different biological cells (yeast, L6, and HEK 293). The results reveal that the bulk induced hydrodynamic resistance DR is related to the cell concentration and apparent viscosity of the cells. © 2014 AIP Publishing LLC.
About the journal
JournalData powered by TypesetBiomicrofluidics
PublisherData powered by TypesetAmerican Institute of Physics Inc.
ISSN19321058
Open AccessYes
Concepts (15)
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    Biomechanics
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    Cells
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    Cytology
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    Deformation
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    Hydrodynamics
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    Viscosity
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    CELL CONCENTRATIONS
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    Closed-form expression
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    DEFORMABILITY INDEX
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    HYDRODYNAMIC RESISTANCE
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    MATHEMATICAL FORMULAS
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    Microfluidic channel
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    Theoretical modeling
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    VOLUME OF FLUID MODEL
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    Drop breakup