March 2025

Journal

Dynamic condensation model of rolling droplets for high-performance heat transfer

By:
Mongaa, Deepak; Boylan, Dylan; Bhamitipadi suresh, Dhanush; Sarma, Jyotirmoy; Jin, Yaqing; Dai, Xianming; Wang, Pengtao
Journal Name:
Newton
Page Number:
100033
Volume:
TBD
Publication Date:
March 2025
View DOI Listing:
https://doi.org/10.1016/j.newton.2025.100033

Abstract

Condensation is a critical process during vapor-liquid phase change in relation to heat transfer. To achieve a high heat transfer coefficient, the classical model for dropwise condensation requires a low contact angle and low contact angle hysteresis, failing to align with experimental observations on a hydrophobic and slippery quasi-liquid surface (QLS). We report a dynamic condensation model that incorporates high-frequency condensate removal by emphasizing the role of timescale during droplet growth and shedding. Our model agrees well with the experimental result that a surface with high contact angle and low contact angle hysteresis promotes condensation, particularly during rolling-propelled condensate removal. Particle image velocimetry reveals that rolling droplets on a hydrophobic QLS exhibit 4-fold higher shedding speeds than the sliding droplets on a hydrophilic QLS, leading to significant heat transfer enhancement. This work deepens our theoretical understanding of condensation heat transfer and provides advanced physics-informed design rationales for water and energy systems.


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