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Bertrand Lecordier

Publications and source records attributed to Bertrand Lecordier.

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Influence of Electrohydrodynamic on Droplet Stability in Leaky Dielectric Media

This work examines the deformation dynamics of dielectric liquid droplet when exposed to a uniform electric field. The experimental investigation involves two-phase configurations, here as silicone oil droplets suspended in castor oil. The droplet dynamics including deformation, elongation, oscillation, and rotation are investigated over a range of electric field strengths using shadow-imaging. In parallel, fluorescent tracer particles were employed to perform threedimensional Lagrangian Particle Tracking (3D-LPT) using the Shake-The-Box (STB) technique, allowing for a detailed characterization of the internal electrohydrodynamic flow within the droplet subjected to a uniform electric field. For silicone oil droplets in castor oil medium (S/R > 1), the droplets initially deform into oblate shape. At sufficiently high electric field strengths, the droplet undergoes an Electrohydrodynamic instability, aligning their axis at an angle to the direction of electric field due to the imbalance in induce electric torque. Upon further increasing the field strength, the droplets display oscillatory deformation before settling into a transiently stable configuration. The current study identifies and characterizes the distinct regimes of droplet behaviour, from initial deformation at low electric fields to oscillatory behaviour at high field strengths depending upon the relative dielectric and fluid properties of the liquid phases.

physics.flu-dyn

Electrohydrodynamic flows inside a neutrally buoyant leaky dielectric drop

We present for the first time an experimental investigation of electrohydrodynamic (EHD) flows within a neutrally buoyant drop with initial radius of 2.25 mm. Utilizing particle image velocimetry (PIV) and high-speed shadowgraphy, we measure the internal circulation and reported velocity profiles in the bulk and at the interface of the drop. Two leaky dielectric liquids, Silicone and Castor oils, are employed as the drop and external phase, allowing for the analysis of two shape configurations: oblate and prolate. The strength of the applied uniform electric field, $E_o$, spans from 0.125 to 1.75 kV/cm, enabling the analysis covering the small-deformation limit, where the leaky dielectric model (LDM) is applicable. Drops with larger deformations, for which no analytical velocity field is available, are also investigated. Our measurements show a good agreement with the LDM theory for the small-deformation cases. The flows begin at the interface as a result of jump in the electric stresses, leading then to four counter-rotating vortices inside the drop. At permanent regime, the analytical solutions adequately predicts the radial and tangential velocity components both in the bulk and at the interface of the drop. However, a nuanced behavior is noticed for larger deformations, where the LDM theory underpredicts the internal circulation. Moreover, due to the increased deformation, a non-uniform azimuthal profile is observed for the velocity at the interface. Transient measurements of this velocity component enlighten the dynamic response of the EHD flows of the drop. Following the currently available analytical solutions, the dynamic response is governed by the time-scale of its deformation. We propose a critical value of electric capillary number of roughly 0.1 below which the LDM adequately describes the velocity field in both quasi steady-state and transitory regimes.

physics.flu-dyn