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    Two-dimensional electroconvective flows between Navier-slip boundaries

    Zhe Feng*

    • *Contact author: Feng_Zhe@ihpc.a-star.edu.sg

    Phys. Rev. Fluids 10, 083701 – Published 21 August, 2025

    DOI: https://doi.org/10.1103/972g-q2mx

    Abstract

    The influence of Navier-slip boundary conditions on two-dimensional electroconvective flows in a dielectric liquid confined between two infinite parallel plates is investigated, highlighting their pivotal role in modulating flow stability and transport characteristics. The presence of Navier-slip conditions significantly reduces both the linear and nonlinear instability thresholds, offering a plausible explanation for the persistent discrepancies between experimental observations and numerical predictions of these criteria. A critical slip-length range, ls∈[10−3,10], is identified, within which instability thresholds and macroscopic flow features exhibit pronounced sensitivity to ls. In the turbulent regime, the electric Nusselt number scales with the electric Rayleigh number as Ne∝T0.5 under partial- and free-slip boundary conditions, in contrast to the no-slip case, where a weaker scaling Ne∝T0.15 is observed. At sufficiently high electric Rayleigh numbers, a transition from convective states to zonal flow states, characterized by large-scale horizontal flows, emerges. Notably, this transition occurs at lower T values as ls increases. In the zonal flow regime, the observed saturation of the electric Nusselt number provides a possible interpretation of the asymptotic behavior reported in former experimental studies. These results establish a comprehensive framework for understanding the interplay between Navier-slip boundary conditions and electroconvective dynamics, providing critical insights for future experimental validation and theoretical advancements.

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