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Characterization of highly hydrophobic textiles by means of X-ray microtomography, wettability analysis and drop impact

Academic Article
Publication Date:
2017
Short description:
(2017). Characterization of highly hydrophobic textiles by means of X-ray microtomography, wettability analysis and drop impact [journal article - articolo]. In JOURNAL OF PHYSICS. CONFERENCE SERIES. Retrieved from http://hdl.handle.net/10446/122080
abstract:
Highly hydrophobic surfaces have been intensively investigated in the last years because their properties may lead to very promising technological spillovers encompassing both everyday use and high-tech fields. Focusing on textiles, hydrophobic fabrics are of major interest for applications ranging from clothes to architecture to environment protection and energy conversion. Gas diffusion media - made by a gas diffusion layer (GDL) and a microporous layer (MPL) - for fuel cells are a good benchmark to develop techniques aimed at characterizing the wetting performances of engineered textiles. An experimental investigation was carried out about carbon-based, PTFE-treated GDLs with and without MPLs. Two samples (woven and woven-non-woven) were analysed before and after coating with a MPL. Their three-dimensional structure was reconstructed and analysed by computer-aided X-ray microtomography (CT). Static and dynamic wettability analyses were then carried out using a modified axisymmetric drop shape analysis technique. All the surfaces exhibited very high hydrophobicity, three of them near to a super-hydrophobic behavior. Water drop impacts were performed, evidencing different bouncing, sticking and fragmentation outcomes for which critical values of the Weber number were identified. Finally, a CT scan of a drop on a GDL was performed, confirming the Cassie-Baxter wetting state on such surface.
Iris type:
1.1.01 Articoli/Saggi in rivista - Journal Articles/Essays
List of contributors:
Santini, Maurizio; Guilizzoni, Manfredo Gherardo; FEST SANTINI, Stephanie; Lorenzi, M.
Authors of the University:
FEST SANTINI Stephanie
SANTINI Maurizio
Handle:
https://aisberg.unibg.it/handle/10446/122080
Full Text:
https://aisberg.unibg.it/retrieve/handle/10446/122080/251002/Santini_2017_IOP.pdf
Published in:
JOURNAL OF PHYSICS. CONFERENCE SERIES
Journal
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