Spheroidal and conical shapes of ferrofluid-filled capsules in magnetic fields
Christian Wischnewski, Jan Kierfeld

TL;DR
This study combines numerical and analytical methods to analyze how ferrofluid-filled elastic capsules deform in magnetic fields, revealing shape transitions, rupture conditions, and wrinkling behavior relevant for material property characterization.
Contribution
It introduces a comprehensive approach integrating nonlinear elastic shape equations, magnetostatic solutions, and analytical theories to understand capsule deformation and shape transitions in magnetic fields.
Findings
Capsules elongate under magnetic fields similar to ferrofluid droplets.
A discontinuous transition from spheroidal to conical shapes occurs at a critical field.
Wrinkling depends on elongation and affects deformation behavior.
Abstract
We investigate the deformation of soft spherical elastic capsules filled with a ferrofluid in external uniform magnetic fields at fixed volume by a combination of numerical and analytical approaches. We develop a numerical iterative solution strategy based on nonlinear elastic shape equations to calculate the stretched capsule shape numerically and a coupled finite element and boundary element method to solve the corresponding magnetostatic problem, and employ analytical linear response theory, approximative energy minimization, and slender-body theory. The observed deformation behavior is qualitatively similar to the deformation of ferrofluid droplets in uniform magnetic fields. Homogeneous magnetic fields elongate the capsule, and a discontinuous shape transition from a spheroidal shape to a conical shape takes place at a critical field strength. We investigate how capsule elasticity…
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