English

Irradiation-driven Evaporation of Micro Droplets in an Optical Trap

Fluid Dynamics 2024-12-17 v1 Optics

Abstract

Small droplets are irradiated with visible and infrared light in many natural and industrial environments. One of the simplest ways to describe their evaporation is the D2^2-Law. It states that the evaporation rate is proportional to t1/2t^{-1/2}, and R1R^{-1}. However, models like the D2^2-Law do not account for the volumetric heating of light and the effect of strong irradiation on individual droplets is not fully understood. Here we show the effects of IR irradiation on optically levitated water droplets. We find that, under strong irradiation of up to 108W/m210^8 W/m^2, the droplet evaporation is initially driven by the heat from the laser following the power law dR/dtRdR / dt \sim R, i.e. the inverse of the D2^2-Law. Then, when the droplets shrink to 2 - 3 μ\mum in radius a turnover occurs from irradiation-driven back to diffusion-driven evaporation. Our findings support the understanding of droplet evaporation in cases such as rocket engines or internal combustion, where the radiation from the flame will heat water and fuel droplets.

Keywords

Cite

@article{arxiv.2412.10784,
  title  = {Irradiation-driven Evaporation of Micro Droplets in an Optical Trap},
  author = {Jugal Rakesh Shah and Max Huisman and Devendra Deshmukh and Dag Hanstorp and Javier Tello Marmolejo},
  journal= {arXiv preprint arXiv:2412.10784},
  year   = {2024}
}

Comments

9 pages, 5 figures