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Article

Development and Performance Study of Continuous Oil–Water Separation Device Based on Superhydrophobic/Oleophilic Mesh

1
Research Institute of Safety, Environmental Protection and Technical Supervision of Petro China Southwest Oil and Gas Field Company, Chengdu 610095, China
2
School of Chemical Engineering, Sichuan University, Chengdu 610065, China
*
Author to whom correspondence should be addressed.
Nanomaterials 2025, 15(6), 450; https://doi.org/10.3390/nano15060450
Submission received: 8 January 2025 / Revised: 17 February 2025 / Accepted: 20 February 2025 / Published: 16 March 2025

Abstract

Oil–water separation is an important method for treating oily wastewater and recovering oil resources. Based on the different affinities of superhydrophobic surfaces to water and oil, long-term oil–water separation devices with low-energy and high efficiency can be developed through the optimization of structure and process parameters. Superhydrophobic coatings were prepared on stainless-steel mesh surfaces using a spray method to construct single-channel oil–water separation equipment with superhydrophobic/oleophilic meshes, and the effects of structural and process parameters on separation efficiency were systematically investigated. Additionally, a multi-channel oil–water separation device was designed and fabricated to evaluate the feasibility and stability of long-term continuous operations. The optimized single V-shaped channel should be horizontally placed and made from 150-mesh stainless-steel mesh folded at an angle of 38.9°. For the oil–water mixtures containing 20 wt.% oil, the oil–water separation efficiencies for single and two-stage separation were 92.79% and 98.96%, respectively. After 36 h of continuous operation, the multi-channel separation device achieved single-stage and two-stage separation efficiencies of 94.60% and 98.76%, respectively. The maximum processing capacity of the multi-channel device reached 168 L/h. The modified stainless mesh can remain stable with a contact angle (CA) higher than 150° to water for 34 days. The average residence time and contact area during the oil–water separation process significantly affect separation efficiency. By optimizing oil–water separation structures and process parameters, and using a superhydrophobic spray modification method, separation efficiency can be improved while avoiding the generation of secondary pollutants.
Keywords: spray method; superhydrophobic; oleophilic; oil–water separation; residence time spray method; superhydrophobic; oleophilic; oil–water separation; residence time

Share and Cite

MDPI and ACS Style

Chen, T.; Wang, Y.; Li, J.; Zhao, L.; Zhang, X.; He, J. Development and Performance Study of Continuous Oil–Water Separation Device Based on Superhydrophobic/Oleophilic Mesh. Nanomaterials 2025, 15, 450. https://doi.org/10.3390/nano15060450

AMA Style

Chen T, Wang Y, Li J, Zhao L, Zhang X, He J. Development and Performance Study of Continuous Oil–Water Separation Device Based on Superhydrophobic/Oleophilic Mesh. Nanomaterials. 2025; 15(6):450. https://doi.org/10.3390/nano15060450

Chicago/Turabian Style

Chen, Tianxin, Yue Wang, Jing Li, Liang Zhao, Xingyang Zhang, and Jian He. 2025. "Development and Performance Study of Continuous Oil–Water Separation Device Based on Superhydrophobic/Oleophilic Mesh" Nanomaterials 15, no. 6: 450. https://doi.org/10.3390/nano15060450

APA Style

Chen, T., Wang, Y., Li, J., Zhao, L., Zhang, X., & He, J. (2025). Development and Performance Study of Continuous Oil–Water Separation Device Based on Superhydrophobic/Oleophilic Mesh. Nanomaterials, 15(6), 450. https://doi.org/10.3390/nano15060450

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