2021DOAJ (DOAJ: Directory of Open Access Journals)Open access

Study of Fluidic Ejection and Nanodroplet Formation

Văn Quảng Nguyễn, Chung Nguyen Xuan, Dung Hoang Tien, Nguyen Le Nhu Tung, Hung Pham Tien, Tung Nguyen Tien, Tam D. Nguyen

Open full text 0 citations

Abstract

Study of fluidic molecule ejection through nozzle diameters of 27.5, 30 and 40 Angstrom (Å) at temperatures of 310, 315 and 333 Kelvin (K) is performed by using the molecular dynamics simulation method. The results show that almost all molecules were ejected out through the nozzle and formed up the fluidic jets on the nozzle’s surfaces for all above cases. However, a fluidic jet was not separated out from the nozzle’s surface for the case of the 310 K temperature and 27.5 Å diameter under any the pushing force values and ejection time. Otherwise, the jets separate out from the nozzle’s surface to produce the fluidic nanodroplets when increasing either the nozzle diameter to 30 Å or the temperature magnitude to 315 K. These demonstrate the nozzle size and temperature magnitude decide to the fluidic ejection and nanodroplet formation.

About this research paper

What this paper is about

Study of fluidic molecule ejection through nozzle diameters of 27.5, 30 and 40 Angstrom (Å) at temperatures of 310, 315 and 333 Kelvin (K) is performed by using the molecular dynamics simulation method. The results show that almost all molecules were ejected out through the nozzle and formed up the fluidic jets on the nozzle’s surfaces for all above cases. However, a fluidic jet was not separated out from the nozzle’s surface for the case of the 310 K temperature and 27.5 Å diameter under any the pushing force values and ejection time. Otherwise, the jets separate out from the nozzle’s surface to produce the fluidic nanodroplets when increasing either the nozzle diameter to 30 Å or the temperature magnitude to 315 K. These demonstrate the nozzle size and temperature magnitude decide to the fluidic ejection and nanodroplet formation.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Study of fluidic molecule ejection through nozzle diameters of 27.5, 30 and 40 Angstrom (Å) at temperatures of 310, 315 and 333 Kelvin (K) is performed by using the molecular dynamics simulation method. The results show that almost all molecules were ejected out through the nozzle and formed up the fluidic jets on the nozzle’s surfaces for all above cases. However, a fluidic jet was not separated out from the nozzle’s surface for the case of the 310 K temperature and 27.5 Å diameter under any the pushing force values and ejection time. Otherwise, the jets separate out from the nozzle’s surface to produce the fluidic nanodroplets when increasing either the nozzle diameter to 30 Å or the temperature magnitude to 315 K. These demonstrate the nozzle size and temperature magnitude decide to the fluidic ejection and nanodroplet formation.

Key concepts: Nozzle, Fluidics, Jet (fluid), Mechanics, Materials science, Chemistry, Physics, Aerospace engineering

Related papers

Back to paper searchBrowse research topicsOriginal source
Study of Fluidic Ejection and Nanodroplet Formation — Research Paper | ScholarLens