2026-07-13
Singular jets in free-falling droplets
Publication
Publication
Phys. Rev. Fluids , Volume 11 - Issue 7 p. 073602: 1- 21
We report on singular jets in a free-falling liquid tin droplet following nanosecond laser-pulse impact. Following impact, the droplet (with diameter 0=50 or 70µm ) undergoes rapid radial expansion and subsequent retraction, resulting in the formation of an axisymmetric jet. Using numerical simulations in tandem with our experiments, we reveal that a delicate interplay between radial flow and the curvature of the retracting droplet governs jet formation. The resulting dynamics is characterized using the impact Weber number, We (in the experiments 2≲We≲16 ), and a pressure width, W (typically 1≲≲2 ), which describes the angular distribution over the droplet surface of the instantaneous pressure impulse exerted by the transient laser-produced plasma. For values We<10 , the droplet presents a pronounced curvature during the retraction, leading to the formation of a cavity. The collapse of such a cavity leads to a singular jet that greatly enhances the jetting velocity up to ten times the impact propulsion velocity, an effect that narrowly peaks around We∼6–8 , reminiscent of singular jets in droplet-solid impact. We identify a further sensitivity of the jet velocity enhancement on the pressure width W and capture the dynamics in a phase diagram connecting the various deformation morphologies with jet velocity.
| Additional Metadata | |
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| APS | |
| ASML, ARCNL, VU, UvA, RUG, NWO | |
| Dutch Ministry of Economic Affairs and Climate Policy , Netherlands Organisation for Scientific Research (NWO) , European Research Council (ERC) | |
| doi.org/10.1103/qq4m-rth6 | |
| Phys. Rev. Fluids | |
| Organisation | EUV Plasma Processes |
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Kharbedia, M., França, H., Schubert, H. K., Engels, D., Jalaal, M.& Versolato, O. (2026). Singular jets in free-falling droplets. Phys. Rev. Fluids, 11(7), 073602: 1–21.https://doi.org/10.1103/qq4m-rth6 |
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