Abstract
We studied the interaction of atmospheric-pressure plasma jets of Ar or air with liquid films of an aliphatic hydrocarbon on moving solid substrates. The hydrodynamic jet-liquid interaction induces a track of lower film thickness. The chemical plasma-surface interaction oxidizes the liquid, leading to a local increase of the surface tension and a self-organized redistribution of the liquid film. We developed a numerical model that qualitatively reproduces the formation, instability and coarsening of the flow patterns observed in the experiments. Monitoring the liquid flow has potential as an in-situ , spatially and temporally resolved, diagnostic tool for the plasma-liquid surface interaction.
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Berendsen, C. W. J., Van Veldhuizen, E. M., Kroesen, G. M. W., & Darhuber, A. A. (2015). Marangoni flows induced by atmospheric-pressure plasma jets. Journal of Physics D: Applied Physics, 48(2). https://doi.org/10.1088/0022-3727/48/2/025203
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