jp7b02766_si_001.zip (34.69 MB)
Marangoni Flow Induced Evaporation Enhancement on Binary Sessile Drops
dataset
posted on 2017-05-23, 00:00 authored by Pin Chen, Souad Harmand, Safouene Ouenzerfi, Jesse SchifflerThe
evaporation processes of pure water, pure 1-butanol, and 5%
1-butanol aqueous solution drops on heated hydrophobic substrates
are investigated to determine the effect of temperature on the drop
evaporation behavior. The evolution of the parameters (contact angle,
diameter, and volume) during evaporation measured using a drop shape
analyzer and the infrared thermal mapping of the drop surface recorded
by an infrared camera were used in investigating the evaporation process.
The pure 1-butanol drop does not show any thermal instability at different
substrate temperatures, while the convection cells created by the
thermal Marangoni effect appear on the surface of the pure water drop
from 50 °C. Because 1-butanol and water have different surface
tensions, the infrared video of the 5% 1-butanol aqueous solution
drop shows that the convection cells are generated by the solutal
Marangoni effect at any substrate temperature. Furthermore, when the
substrate temperature exceeds 50 °C, coexistence of the thermal
and solutal Marangoni flows is observed. By analyzing the relation
between the ratio of the evaporation rate of pure water and 1-butanol
aqueous solution drops and the Marangoni number, a series of empirical
equations for predicting the evaporation rates of pure water and 1-butanol
aqueous solution drops at the initial time as well as the equations
for the evaporation rate of 1-butanol aqueous solution drop before
the depletion of alcohol are derived. The results of these equations
correspond fairly well to the experimental data.