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Pinch-off Dynamics of the Dripping Mode under an Axial Electric Field
Yufei Xie1, Hao Chen1, Tao An1
1School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.
Abstract:
Breakup of electrified droplets is a fascinating phenomenon that is of critical importance to electrohydrodynamic (EHD) printing. However, previous studies predominantly focused on the local pinch-off dynamics of pendant droplets or electrified jets stressed by a radial electric field. Here, we conduct a parametric investigation into the pinching dynamics of the dripping mode under a nonuniform axial electric field with a continuous liquid supply. The two-dimensional axisymmetric computational domain is solved using the arbitrary Lagrangian-Eulerian technique coupled to the leaky-dielectric model. The results of this work highlight the complex interplay among inertial, electric field stress, and charge relaxation kinetics. This intricate interplay is responsible for the pinch-off time, droplet length, thread length, and primary droplet size. Furthermore, we find a notable independence of inertial, electric field strength, and electrical conductivity of the liquid on the scaling law describing droplet pinch-off at low viscosity. These findings may have potential applications in improving electrohydrodynamic printing.
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