Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/93027
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Title: Interaction of a planar shock wave and a water droplet embedded with a vapour cavity
Authors: Liang, Y 
Jiang, Y 
Wen, CY 
Liu, Y 
Issue Date: 25-Feb-2020
Source: Journal of fluid mechanics, 25 Feb. 2020, v. 885, R6
Abstract: The interaction of a shock wave and a water droplet embedded with a vapour cavity is experimentally investigated in a shock tube for the first time. The vapour cavity inside the droplet is generated by decreasing the surrounding pressure to the saturation pressure, and an equilibrium between the liquid phase and the gas phase is obtained inside the droplet. Direct high-speed photography is adopted to capture the evolution of both the droplet and the vapour cavity. The formation of a transverse jet inside the droplet during the cavity-collapse stage is clearly observed. Soon afterwards, at the downstream pole of the droplet, a water jet penetrating into the surrounding air is observed during the cavity-expansion stage. The evolution of the droplet is strongly influenced by the evolution of the vapour cavity. The phase change process plays an important role in vapour cavity evolution. The effects of the relative size and eccentricity of the cavity on the movement and deformation of the droplet are presented quantitatively.
Keywords: Drops
Gas/liquid flows
Shock waves
Publisher: Cambridge University Press
Journal: Journal of fluid mechanics 
ISSN: 0022-1120
EISSN: 1469-7645
DOI: 10.1017/jfm.2019.1031
Rights: This article has been published in a revised form in Journal of Fluid Mechanics [http://doi.org/10.1017/jfm.2019.1031]. This version is free to view and download for private research and study only. Not for re-distribution or re-use. © The Author(s), 2020.
When citing an Accepted Manuscript or an earlier version of an article, the Cambridge University Press requests that readers also cite the Version of Record with a DOI link. The article is subsequently published in revised form in Journal of Fluid Mechanics [http://doi.org/10.1017/jfm.2019.1031].
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