English

Droplet dissolution driven by emerging thermal gradients and Marangoni flow

Fluid Dynamics 2022-02-15 v1

Abstract

The lifetime τ\tau of an isothermal and purely diffusively dissolving droplet in a host liquid scales as τR02\tau \sim R_0^2 with its initial radius R0R_0 [Langmuir, Phys. Rev. 12, 368 (1919)]. For a droplet dissolving due to natural convection driven by density differences, its lifetime scales as τR05/4\tau\sim R_0^{5/4} [Dietrich et al., J. Fluid Mech. 794, 45 (2016)]. In this paper we experimentally find and theoretically derive yet another droplet dissolution behavior, resulting in τR04\tau \sim R_0^4. It occurs when the dissolution dynamics is controlled by local heating of the liquid, leading to a modified solubility and a thermal Marangoni flow around the droplet. The thermal gradient is achieved by plasmonic heating of a gold nanoparticle decorated sample surface, on which a sessile water droplet immersed in water-saturated 1-butanol solution is sitting. The resulting off-wall thermal Marangoni flow and the temperature dependence of the solubility determine the droplet dissolution rate, resulting in a shrinkage R(t)(τt)1/4R(t) \sim (\tau -t )^{1/4} of the droplet radius and thus in τR04\tau \sim R_0^{4}.

Keywords

Cite

@article{arxiv.2202.05945,
  title  = {Droplet dissolution driven by emerging thermal gradients and Marangoni flow},
  author = {Binglin Zeng and Yuliang Wang and Christian Diddens and Harold J. W. Zandvliet and Detlef Lohse},
  journal= {arXiv preprint arXiv:2202.05945},
  year   = {2022}
}

Comments

15 pages, 6 figures

R2 v1 2026-06-24T09:32:58.896Z