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Relaxation of microparticles exposed to hydrodynamic forces in microfluidic conduits
Authors:Josef Jan?a  V??ra Halabalov??  Vladim??r Pol???ek  Martin Va?ina  Anastasia Yu Menshikova
Institution:1. Department of Physics and Materials Engineering, Faculty of Technology, Tomas Bata University, Nad Str??n??mi 4511, 760 05, Zl??n, Czech Republic
2. Department of Biochemistry and Food Analysis, Faculty of Technology, Tomas Bata University, TGM 275, 762 72, Zl??n, Czech Republic
3. Department of Mathematics, Faculty of Applied Informatics, Tomas Bata University, Nad Str??n??mi 4511, 760 05, Zl??n, Czech Republic
4. Institute of Macromolecular Compounds, Russian Academy of Sciences, Bolshoi pr. 31, 199004, Saint Petersburg, Russia
Abstract:The behavior of microparticles exposed to gravitational and lift forces and to the velocity gradient in flow velocity profile formed in microfluidic conduits is studied from the viewpoint of the transient period (the relaxation) between the moment at which a particle starts to be transported by the hydrodynamic flow and the time at which it reaches an equilibrium position, characterized by a balance of all active forces. The theoretical model allowing the calculation of the relaxation time is proposed. The numerical calculus based on the proposed model is compared with the experimental data obtained under different experimental conditions, namely, for different lengths of microfluidic channels, different average linear velocities of the carrier liquid, and different sizes and densities of the particles used in the study. The results are important for the optimization of microfluidic separation units such as microthermal field-flow fractionation channels in which the separation or manipulation of the microparticles of various origin, synthetic, natural, biological, etc., is performed under similar experimental conditions but by applying an additional thermodynamic force.
Figure
Trajectory of a particle transported by fluid flow in microfluidic channel and undergoing the effect of external filed force and lift force.
Keywords:
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