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Published on: November 10, 2014
Electrically-Induced Droplet Detachment and Transport on Bionic Honeycomb-Fiber Composite Surfaces
Kai Guo1, Zheqiu Yan1, Yunrui Han2
1School of Petroleum and Chemical Engineering, Lanzhou University of Technology, Lanzhou 730050, P. R. China.
Abstract:
The complex regulation of droplet dynamics, based on the application of external electric fields and micro/nano functional surfaces, has garnered widespread attention in fields such as enhanced oil-water separation, self-cleaning systems, and novel imaging technologies. In this study, a PLE surface (composite biomimetic hydrophobic surface with micron-level honeycomb texture and nanoscale villi) was fabricated. Using a high-speed microscopy system, the detachment and movement of droplets on the biomimetic surface under a direct current electric field were experimentally investigated. By introducing a biomimetic surface correction factor, (ξ), a polarization and force model for droplets on the PLE surface was established. The results indicate that the amount of polarized charge (Q) is positively correlated with the radius (R2), while the deformation degree (λ) is proportional to the electric field intensity (Ec). Key parameters for droplet detachment were determined, including the electric field threshold (Ec = 83.4 kV/m) and the correction factor (ξ = 0.1066). The relationship among surface electric field intensity Ec, droplet detachment time (TL), the ratio of droplet height change (Hs) to initial height (Hs0), droplet velocity (Vt), and contact line ratio (L*) was analyzed. It was found that there exists a power-law relationship between Ec and TL. Moreover, the PLE surface exhibits a more sensitive response to the applied electric field compared to the PI (polyimide) surface.
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