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Microscale hydrodynamic cloaking and shielding via electro-osmosis

ORAL

Abstract

We demonstrate theoretically and experimentally that injection of momentum in a region surrounding an object in microscale flow can yield both 'cloaking' conditions, where the flow field outside the cloaking region is unaffected by the object, and 'shielding' conditions, where the hydrodynamic forces on the object are eliminated. The experimental setup is based on a cylindrical obstacle in a Hele-Shaw cell exposed to pressure-driven flow. Momentum injection is performed using field-effect electro-osmosis in a region around the obstacle. We present a theoretical framework employing a shape-perturbation approach and analytical solutions for a range of geometrical shapes of the obstacle. Good agreement between experiments and theory is found. We also demonstrate the ability to dynamically switch between the cloaking and shielding states, which corresponds to a control principle with real-time adaptivity.

Publication: E. Boyko, V. Bacheva, M. Eigenbrod, F. Paratore, A. D. Gat, S. Hardt, and M. Bercovici, Microscale hydrodynamic cloaking and shielding via electro-osmosis, Physical Review Letters 126 (2021), 184502.

Presenters

  • Steffen Hardt

    TU Darmstadt, Mechanical Engineering Department, Technische Universität Darmstadt, TU Darmstadt, Germany

Authors

  • Evgeniy Boyko

    Technion - Israel Institute of Technology; Princeton University, USA

  • Vesna Bacheva

    Technion - Israel Institute of Technology

  • Michael Eigenbrod

    TU Darmstadt, Germany

  • Federico Paratore

    IBM Research Europe, Switzerland

  • Amir D Gat

    Technion - Israel Institute of Technology

  • Steffen Hardt

    TU Darmstadt, Mechanical Engineering Department, Technische Universität Darmstadt, TU Darmstadt, Germany

  • Moran Bercovici

    Technion - Israel Institute of Technology