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Unsteady drag force on an immersed sphere oscillating near a wall

  • Zaicheng Zhang
  • , Vincent Bertin
  • , Martin Essink
  • , Hao Zhang
  • , Nicolas Fares
  • , Zaiyi Shen
  • , Thomas Bickel
  • , Thomas Salez*
  • , Abdelhamid Maali*
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

The unsteady hydrodynamic drag exerted on an oscillating sphere near a planar wall is addressed experimentally, theoretically and numerically. The experiments are performed by using colloidal-probe atomic force microscopy in thermal noise mode. The resonance frequencies and quality factors are extracted from the measurement of the power spectrum density of the probe oscillation for a broad range of gap distances and Womersley numbers. The shift in the resonance frequency of the colloidal probe as the probe goes close to a solid wall infers the wall-induced variations of the effective mass of the probe. Interestingly, a crossover from a positive to a negative shift is observed as the Womersley number increases. In order to rationalize the results, the confined unsteady Stokes equation is solved numerically using a finite-element method, as well as asymptotic calculations. The in-phase and out-of-phase terms of the hydrodynamic drag acting on the sphere are obtained and agree well with the experimental results. All together, the experimental, theoretical and numerical results show that the hydrodynamic force felt by an immersed sphere oscillating near a wall is highly dependent on the Womersley number.
Original languageEnglish
Article numberA21
Number of pages17
JournalJournal of fluid mechanics
Volume977
Early online date14 Dec 2023
DOIs
Publication statusPublished - 25 Dec 2023

Keywords

  • 2024 OA procedure
  • Micro-/nano-fluid dynamics
  • Low-Reynolds-number flows

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