Interplay of capillary and Marangoni flows in micropillar evaporation
Goksel Yuncu, Yigit Akkus, Zafer Dursunkaya

TL;DR
This study develops a coupled model to analyze the effects of capillary and Marangoni flows in micropillar evaporation, revealing the significant role of thermocapillarity in temperature regulation and flow patterns.
Contribution
It introduces a comprehensive multi-scale model coupling liquid flow and energy transfer, highlighting the impact of Marangoni flow on evaporation dynamics.
Findings
High Marangoni number causes a sharp temperature drop due to thermocapillary convection.
Model predicts formation of periodic reverse surface flows on the liquid interface.
Marangoni flow significantly influences evaporation efficiency and temperature distribution.
Abstract
The evaporation from a micropillar evaporator is a problem governed by various interfacial phenomena such as the capillarity-induced liquid flow, thin-film evaporation intensifying near the contact lines, and thermocapillarity-induced Marangoni flow. However, past research has not been able to assess the effect of Marangoni flow due to the missing coupling between cell- and device-level modeling. In this work, we develop a comprehensive model for the evaporation from a micropillar evaporator by coupling the liquid flow with the energy transfer in both liquid and solid domains at both cell- and device-levels. The model is successfully validated with previous experiments. When the Marangoni number is sufficiently high, the model identifies a sharp reduction in the evaporator temperature attributed to the thermocapillary convection creating circulations beneath the liquid-vapor interface,…
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Taxonomy
TopicsFluid Dynamics and Thin Films · Innovative Microfluidic and Catalytic Techniques Innovation · Solar-Powered Water Purification Methods
