Accurate and efficient boundary integral methods for electrified liquid bridge problems
Document Type
Article
Publication Date
1-1-2005
Abstract
We derive and implement boundary integral methods for axisymmetric liquid bridge problems in the presence of an axial electric field. The liquid bridge is bounded by solid parallel electrodes placed perpendicular to the axis of symmetry and held at a constant potential difference. The fluid is assumed to be nonconducting and has permittivity different from that of the passive surrounding medium. The problem reduces to the solution of two harmonic problems for the fluid and voltage potential inside the bridge and another harmonic problem for the voltage potential outside the bridge. The shape of the moving interface is determined by the imposition of stress, as well as kinematic and electric field boundary conditions, the former condition accounting for discontinuous electric stresses across the interface. We propose fast and highly accurate boundary integral methods based on fast summations of appropriate series representations of axisymmetric Green's functions in bounded geometries. We implement our method to calculate equilibrium shapes for electrified liquid bridges in the absence and presence of gravity. Such calculations appear in the literature using finite element methods, and our boundary integral approach is a fast and accurate alternative. © 2005 Society for Industrial and Applied Mathematics.
Identifier
27844493982 (Scopus)
Publication Title
SIAM Journal on Scientific Computing
External Full Text Location
https://doi.org/10.1137/040604352
ISSN
10648275
First Page
2102
Last Page
2132
Issue
6
Volume
26
Recommended Citation
Volkov, Darko; Papageorgiou, Demetrios T.; and Petropoulos, Peter G., "Accurate and efficient boundary integral methods for electrified liquid bridge problems" (2005). Faculty Publications. 19827.
https://digitalcommons.njit.edu/fac_pubs/19827
