Shape oscillations of drops in the presence of surfactants
- 1 January 1991
- journal article
- research article
- Published by Cambridge University Press (CUP) in Journal of Fluid Mechanics
- Vol. 222 (-1) , 351-368
- https://doi.org/10.1017/s0022112091001131
Abstract
The shape oscillations of drops in another fluid with or without surfactants has been analysed by normal mode expansions. The effects of surfactants are accommodated by considering the Gibbs elasticity, associated with the redistribution of surfactants, and a Boussinesq surface fluid with two surface viscosities. A general transcendental equation for the complex frequency of the free oscillations is derived. Explicit dispersion relations are given for fluids of small bulk viscosities and an interface of small, moderate, and large interfacial properties by a perturbation method. We have found that the oscillation always damps out faster for an interface exhibiting interfacial properties other than the interfacial tension, and the Gibbs elasticity is the most important parameter that alters the free-oscillation frequency and the damping constant. Moreover, the energy dissipation for an extensible interface can be much higher than that of an inextensible interface owing to the strong vorticity generated in the boundary layers.Keywords
This publication has 16 references indexed in Scilit:
- Longitudinal surface waves for the study of dynamic properties of surfactant systemsJournal of Colloid and Interface Science, 1985
- Free oscillations of drops and bubbles: the initial-value problemJournal of Fluid Mechanics, 1980
- Shape oscillation and static deformation of drops and bubbles driven by modulated radiation stresses—TheoryThe Journal of the Acoustical Society of America, 1980
- Calculation of Fission Barriers for Heavy and Superheavy NucleiAnnual Review of Nuclear Science, 1972
- The oscillations of a fluid droplet immersed in another fluidJournal of Fluid Mechanics, 1968
- Damping of Waves by Surface-Active MaterialsThe Journal of Chemical Physics, 1965
- Propagation characteristics of capillary ripples, III. Capillary ripple velocity and attenuation dispersion on clean water surfaces and on various monolayersJournal of Colloid Science, 1963
- Dynamics of a fluid interface Equation of motion for Newtonian surface fluidsChemical Engineering Science, 1960
- XXXIV. On the pressure of vibrationsJournal of Computers in Education, 1902
- XX. On the equilibrium of liquid conducting masses charged with electricityJournal of Computers in Education, 1882