Vesicle electrohydrodynamic simulations by coupling immersed boundary and immersed interface method
Document Type
Article
Publication Date
7-15-2016
Abstract
In this paper, we develop a coupled immersed boundary (IB) and immersed interface method (IIM) to simulate the electrodeformation and electrohydrodynamics of a vesicle in Navier-Stokes leaky dielectric fluids under a DC electric field. The vesicle membrane is modeled as an inextensible elastic interface with an electric capacitance and an electric conductance. Within the leaky dielectric framework and the piecewise constant electric properties in each fluid, the electric stress can be treated as an interfacial force so that both the membrane electric and mechanical forces can be formulated in a unified immersed boundary method. The electric potential and transmembrane potential are solved simultaneously via an efficient immersed interface method. The fluid variables in Navier-Stokes equations are solved using a projection method on a staggered MAC grid while the electric potential is solved at the cell center. A series of numerical tests have been carefully conducted to illustrate the accuracy and applicability of the present method to simulate vesicle electrohydrodynamics. In particular, we investigate the prolate-oblate-prolate (POP) transition and the effect of electric field and shear flow on vesicle electrohydrodynamics. Our numerical results are in good agreement with those obtained in previous work using different numerical algorithms.
Identifier
84973169171 (Scopus)
Publication Title
Journal of Computational Physics
External Full Text Location
https://doi.org/10.1016/j.jcp.2016.04.035
e-ISSN
10902716
ISSN
00219991
First Page
66
Last Page
81
Volume
317
Grant
1009105
Fund Ref
National Center for Theoretical Sciences
Recommended Citation
Hu, Wei Fan; Lai, Ming Chih; Seol, Yunchang; and Young, Yuan Nan, "Vesicle electrohydrodynamic simulations by coupling immersed boundary and immersed interface method" (2016). Faculty Publications. 10384.
https://digitalcommons.njit.edu/fac_pubs/10384