Control of Droplet Impact through Magnetic Actuation of Surface Microstructures

Author:

Jezeršek Matija1ORCID,Kriegl Raphael2,Kravanja Gaia1,Hribar Luka1,Drevenšek‐Olenik Irena34,Unold Heiko2,Shamonin Mikhail2

Affiliation:

1. University of Ljubljana Faculty of Mechanical Engineering Aškerčeva 6 Ljubljana SI‐1000 Slovenia

2. Faculty of Electrical Engineering and Information Technology Ostbayerische Technische Hochschule (OTH) Regensburg Seybothstr. 2 93053 Regensburg Germany

3. University of Ljubljana Faculty of Mathematics and Physics Jadranska 19 Ljubljana SI‐1000 Slovenia

4. Department of Complex Matter J. Stefan Institute Jamova 39 Ljubljana SI‐1000 Slovenia

Abstract

AbstractAn effective method for on‐demand control over the impact dynamics of droplets on a magnetoresponsive surface is reported. The surface is comprised of micrometer‐sized lamellas from a magnetoactive elastomer on a copper substrate. The surface itself is fabricated using laser micromachining. The orientation of the lamellae is switched from edge‐on (orthogonal to the surface) to face‐on (parallel to the surface) by changing the direction of a moderate (<250 mT) magnetic field. This simple actuation technique can significantly change the critical velocities of droplet rebound, deposition, and splashing. Rebound and deposition regimes can be switched up to Weber number We < 13 ± 3, while deposition and splashing can be switched in the range of 32 < We < 52. Because a permanent magnet is used, no permanent power supply is required for maintaining the particular regime of droplet impact. The presented technology is highly flexible and enables selective fabrication and actuation of microstructures on complex devices. It has great potential for applications in soft robotics, microfluidics, and advanced thermal management.

Funder

Javna Agencija za Raziskovalno Dejavnost RS

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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