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    Hovering of an Actively Driven Fluid-Lubricated Foil

    Stephane Poulain1, Timo Koch1, L. Mahadevan2,3,*, and Andreas Carlson1,†

    • 1Department of Mathematics, University of Oslo, 0851 Oslo, Norway
    • 2School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, USA
    • 3Department of Physics and Department of Organismic and Evolutionary Biology, Harvard University, Cambridge, Massachusetts 02138, USA

    • *Contact author: lmahadev@g.harvard.edu
    • †Contact author: acarlson@math.uio.no

    Phys. Rev. Lett. 135, 214002 – Published 17 November, 2025

    DOI: https://doi.org/10.1103/bs69-16nj

    Abstract

    Inspired by recent experimental observations of a harmonically excited elastic foil hovering near a wall while supporting substantial weight, we develop a theoretical framework that describes the underlying physical effects. Using elastohydrodynamic lubrication theory, we quantify how the dynamic deformation of the soft foil couples to the viscous fluid flow in the intervening gap. Our analysis shows that the soft foil rectifies the reversible forcing, breaking time-reversal symmetry; the spatial distribution of the forcing determines whether the sheet is attracted to or repelled from the wall. A simple scaling law predicts the time-averaged equilibrium hovering height and the maximum weight the sheet can sustain before detaching. Numerical simulations of the governing equation corroborate our theoretical predictions, are in qualitative agreement with experiments, and might explain the behavior of organisms while providing design principles for soft robotics.

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