English

Equatorial blowup and polar caps in drop electrohydrodynamics

Fluid Dynamics 2024-06-13 v3

Abstract

We illuminate effects of surface-charge convection intrinsic to leaky-dielectric electrohydrodynamics by analyzing the symmetric steady state of a circular drop in an external field at arbitrary electric Reynolds number ReE\mathrm{Re}_E. In formulating the problem, we identify an exact factorization that reduces the number of dimensionless parameters from four -- ReE\mathrm{Re}_E and the conductivity, permittivity and viscosity ratios -- to two: a modified electric Reynolds number Re~\widetilde{\mathrm{Re}} and a charging parameter ϖ\varpi. In the case ϖ<0\varpi<0, where charge relaxation in the drop phase is slower than in the suspending phase, and, as a consequence, the interface polarizes antiparallel to the external field, we find that above a critical Re~\widetilde{\mathrm{Re}} value the solution exhibits a blowup singularity such that the surface-charge density diverges antisymmetrically with the 1/3-1/3 power of distance from the equator. We use local analysis to uncover the structure of that blowup singularity, wherein surface charges are convected by a locally induced flow towards the equator where they annihilate. To study the blowup regime, we devise a numerical scheme encoding that local structure where the blowup prefactor is determined by a global charging -- annihilation balance. We also employ asymptotic analysis to construct a universal problem governing the blowup solutions in the regime Re~1\widetilde{\mathrm{Re}}\gg1, far beyond the blowup threshold. In the case ϖ>0\varpi>0, where charge relaxation is faster in the drop phase and the interface polarizes parallel to the external field, we numerically observe and asymptotically characterize the formation at large Re~\widetilde{\mathrm{Re}} of stagnant, perfectly conducting surface-charge caps about the drop poles.

Keywords

Cite

@article{arxiv.2403.14876,
  title  = {Equatorial blowup and polar caps in drop electrohydrodynamics},
  author = {Gunnar G. Peng and Rodolfo Brandao and Ehud Yariv and Ory Schnitzer},
  journal= {arXiv preprint arXiv:2403.14876},
  year   = {2024}
}