Zhizhao Che
Imperial College London
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Publication
Featured researches published by Zhizhao Che.
Physical Review E | 2015
Zhizhao Che; Amandine Deygas; Omar K. Matar
The impact of droplets on an inclined falling liquid film is studied experimentally using high-speed imaging. The falling film is created on a flat substrate with controllable thicknesses and flow rates. Droplets with different sizes and speeds are used to study the impact process under various Ohnesorge and Weber numbers, and film Reynolds numbers. A number of phenomena associated with droplet impact are identified and analyzed, such as bouncing, partial coalescence, total coalescence, and splashing. The effects of droplet size, speed, as well the film flow rate are studied culminating in the generation of an impact regime map. The analysis of the lubrication force acted on the droplet via the gas layer shows that a higher flow rate in the liquid film produces a larger lubrication force, slows down the drainage process, and increases the probability of droplet bouncing. Our results demonstrate that the flowing film has a profound effect on the droplet impact process and associated phenomena, which are markedly more complex than those accompanying impact on initially quiescent films.
Langmuir | 2017
Zhizhao Che; Omar K. Matar
The impact of droplets on liquid films is ubiquitous in natural and industrial processes, and surfactants can significantly alter the impact process by changing the local surface tension. Here we study the impact of droplets on liquid films in the presence of surfactant using high-speed photography, and reveal the flow pattern by dye-tracing. The effects of the droplet size and speed, and the initial film thickness on the impact process are elucidated. The results show that the flow is significantly affected by adding surfactant to the droplet, the liquid film, or to both phases. In particular, the film dye patterns form concentric circles and flower-shaped structures at low and high droplet Weber numbers, respectively. We also show how surfactant-induced Marangoni stresses modify these flow patterns, and alter the characteristics of the phenomena associated with the impact process, such as the propagation of capillary waves, the evolution of the crown, and the formation of secondary droplets. During the impact of surfactant droplets on thin water films, the Marangoni stresses can be sufficiently strong so as to drive film dewetting.
Physical Review E | 2017
Idris Adebayo; Zhihua Xie; Zhizhao Che; Omar K. Matar
International Journal of Multiphase Flow | 2014
Zhizhao Che; F. Fang; James R. Percival; Christopher C. Pain; Omar K. Matar; Michael Navon
Bulletin of the American Physical Society | 2013
Zhizhao Che; F. Fang; James R. Percival; Geoffrey F. Hewitt; Christopher C. Pain; Omar K. Matar; Michael Navon
Soft Matter | 2018
Zhizhao Che; Omar K. Matar
Nature | 2017
Alex Wray; Zhizhao Che; Omar K. Matar; Prashant Valluri; Jungho Kim; Khellil Sefiane; Pedro Javier Saenz Hervias
Bulletin of the American Physical Society | 2017
Jalel Chergui; Assen Batchvarov; Lyes Kahouadji; Damir Juric; Seungwon Shin; Richard V. Craster; Omar K. Matar; Zhizhao Che
Bulletin of the American Physical Society | 2017
Idris Adebayo; Zhizhao Che; Omar K. Matar
Bulletin of the American Physical Society | 2017
Zhizhao Che; Omar K. Matar