4.7 Article

Dynamics of electrified jets in electrohydrodynamic atomization

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出版社

ELSEVIER
DOI: 10.1016/j.csite.2021.101725

关键词

Electrohydrodynamic atomization; Electrified jet; Dynamics; Size separation effect

资金

  1. National Natural Science Foundation of China [52076105, 12102155]
  2. Natural Science Foundation of Jiangsu Province [BK20210741]

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An electrified jet in electrohydrodynamic atomization can further disintegrate into fine drops, resulting in highly charged and monodispersed drops. The dynamics of the breakup process and the operating parameters that affect spraying modes were analyzed. The geometrical forms of the drops/jets emitted were classified into periodic dripping, pulsating-jet, stable-jet, and unstable jet. Propylene glycol and n-octanol were specifically discussed. Electric stresses significantly accelerated the jet velocity and the breakup length increased with liquid flow rate. The jet position gradually deflected off the needle axis with an increase in electric potential. "Size separation effect" was found to improve printing quality by removing highly charged satellite drops.
An electrified jet ejected from a meniscus (or Taylor cone) can further disintegrate into fine drops with different modes in electrohydrodynamic atomization (EHDA). This process has been applied into many fields because of controllable production of highly charged and monodispersed drops. However, both stable and unstable electrified jets are encountered in EHDA, usually depending on liquid physical properties and operating parameters. A series of electrified jets are visualized and the transient breakup dynamics are analyzed within an electric field. According to the geometry forms of drops or/and jets emitted from the end of a needle, periodic dripping, pulsating-jet, stable-jet, and unstable jet are clearly classified. The operating parameters versus spraying modes are also discussed, especially for propylene glycol and n-octanol. The initial velocity from the Taylor cone, jet breakup length, jet position, and the size separation effect are deeply studied. The jet velocity is significantly accelerated by electric stresses and good agreement with predicted value. The jet breakup length increases sharply as liquid flow rate increasing and slowly increases as electric potential increasing, except for small liquid flow rate where bullet cone occurs. The jet ejection point varies and gradually deflects off needle axis with an increase in electric potential. The 'size separation effect' can help improve the quality of printing by removed highly charged satellite drops.

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