Preparation of Oriented Superhydrophobic Surface to Reduce Agglomeration in Preparing Melt Marbles.

Langmuir

Low-Carbon Technology and Chemical Reaction Engineering Laboratory, School of Chemical Engineering, Sichuan University, Chengdu 610065, P.R. China.

Published: February 2024

AI Article Synopsis

  • Innovative granulation techniques using liquid marbles often face issues like collisions and fragmentation, hindering efficiency.
  • A novel oriented superhydrophobic surface (OSS) made from copper wire was developed to overcome these problems, allowing for effective production and transport of uniform marbles.
  • The study highlights that with optimized parameters (copper wire spacing of 1.0 mm and height of 0.1 mm), a high contact angle of 156° was achieved, leading to successful urea product production and insights into improved granulation processes.

Article Abstract

Numerous innovative granulation techniques utilizing the concept of liquid marbles have been proposed before. However, these processes frequently encounter issues such as collisions, aggregation, and fragmentation of liquid/melt marble during the granulation process. In this study, the oriented superhydrophobic surface (OSS) was successfully prepared by utilizing copper wire to solve the above problem, facilitating efficient batch production and guided transportation of uniform marbles. The parameters and mechanisms of this process were thoroughly studied. The optimized structure is that the copper wire spacing () and height () are set as 1.0 and 0.1 mm, respectively. This resulted in a surface contact angle (CA) of 156° and anisotropic sliding (Δ) of 16.3 ± 1.34°. Using the prepared substrate, high-quality urea products were successfully obtained through the controlled transport of urea melt marbles. The mechanism of guided and directional drag reduction, based on the solid/solid contact on the surface, is proposed. These findings in this study have significant implications for improving granulation processes.

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Source
http://dx.doi.org/10.1021/acs.langmuir.3c03583DOI Listing

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