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  The effect of axisymmetric confinement on propulsion of a three-sphere microswimmer

Gürbüz, A., Lemus, A., Demir, E., Pak, O. S., & Daddi-Moussa-Ider, A. (2023). The effect of axisymmetric confinement on propulsion of a three-sphere microswimmer. Physics of Fluids, 35(8): 081907. doi:10.1063/5.0163348.

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Gürbüz, Ali , Author
Lemus, Andrew , Author
Demir, Ebru , Author
Pak, On Shun, Author
Daddi-Moussa-Ider, Abdallah1, Author                 
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1Department of Living Matter Physics, Max Planck Institute for Dynamics and Self-Organization, Max Planck Society, ou_2570692              

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 Abstract: Swimming at the microscale has recently garnered substantial attention due to the fundamental biological significance of swimming microorganisms and the wide range of biomedical applications for artificial microswimmers. These microswimmers invariably find themselves surrounded by different confining boundaries, which can impact their locomotion in significant and diverse ways. In this work, we employ a widely used three-sphere swimmer model to investigate the effect of confinement on swimming at low Reynolds numbers. We conduct theoretical analysis via the point-particle approximation and numerical simulations based on the finite element method to examine the motion of the swimmer along the centerline in a capillary tube. The axisymmetric configuration reduces the motion to one-dimensional movement, which allows us to quantify how the degree of confinement affects the propulsion speed in a simple manner. Our results show that the confinement does not significantly affect the propulsion speed until the ratio of the radius of the tube to the radius of the sphere is in the range of O ( 1 ) − O ( 10 ), where the swimmer undergoes substantial reduction in its propulsion speed as the radius of the tube decreases. We provide some physical insights into how reduced hydrodynamic interactions between moving spheres under confinement may hinder the propulsion of the three-sphere swimmer. We also remark that the reduced propulsion performance stands in stark contrast to the enhanced helical propulsion observed in a capillary tube, highlighting how the manifestation of confinement effects can vary qualitatively depending on the propulsion mechanisms employed by the swimmers.

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Language(s): eng - English
 Dates: 2023-08-302023-08
 Publication Status: Issued
 Pages: -
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 Rev. Type: Peer
 Identifiers: DOI: 10.1063/5.0163348
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Project name : O.S.P. acknowledges funding support by the National Science Foundation (Grant Numbers 1830859 and 1931292). A.D.-M.-I. acknowledges support from the Max Planck Center Twente for Complex Fluid Dynamics, the Max Planck School Matter to Life, and the MaxSynBio Consortium, which are jointly funded by the Federal Ministry of Education and Research (BMBF) of Germany and the Max Planck Society. The authors are also grateful for the computational resources from the WAVE computing facility (enabled by the E. L. Wiegand Foundation) at Santa Clara University.
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Title: Physics of Fluids
  Abbreviation : Phys. Fluids
Source Genre: Journal
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Publ. Info: Woodbury, N.Y. [etc.] : American Institute of Physics
Pages: - Volume / Issue: 35 (8) Sequence Number: 081907 Start / End Page: - Identifier: ISSN: 0031-9171
CoNE: https://pure.mpg.de/cone/journals/resource/954928595037_1