Numerical study of electrohydrodynamic atomization considering liquid wetting and corona discharge effects

Author:

Mai Luan Ngoc12ORCID,Vu Trung Hieu3ORCID,Dinh Thien Xuan4ORCID,Vu Hoai Duc3ORCID,Tran Canh-Dung5ORCID,Dau Van Thanh3ORCID,Ngo Hieu Khanh126ORCID

Affiliation:

1. Department of Aerospace Engineering, Ho Chi Minh City University of Technology (HCMUT) 1 , 268 Ly Thuong Kiet Street, District 10, Ho Chi Minh City, Vietnam

2. Vietnam National University Ho Chi Minh City, Linh Trung Ward 2 , Thu Duc City, Ho Chi Minh City, Vietnam

3. School of Engineering and Built Environment, Griffith University 3 , Queensland, Australia

4. Explosion Research Institute Inc. 4 , R&D Division, Tokyo, Japan

5. School of Mechanical and Electrical Engineering, University of Southern Queensland 5 , Queensland 4350, Australia

6. VNU-HCM Key Lab. for Internal Combustion Engine, Ho Chi Minh City University of Technology (HCMUT) 6 , 268 Ly Thuong Kiet Street, District 10, Ho Chi Minh City, Vietnam

Abstract

In this paper, the behavior of the cone-jet mode of fluid by electrohydrodynamic atomization (electrospray) is numerically simulated and investigated with the effect of liquid wetting and corona discharge effects. The simulation was performed with contact angle condition to fit the Taylor cone shape by experiments. Experimental data are provided to verify and validate the numerical method, followed by additional analyses on the effects of electrical conductivity, surface tension, flow rate, and fluid viscosity on the electrospray characteristics, including spray current and jet diameter. Numerical results by simulations are in reasonable agreement with experiments and consistent with the literature. Analyses on different contact angles suggest potentially major impacts of this factor on the cone-jet mode in high voltage and low flow rate circumstances. Furthermore, the influence of corona discharge on electrospray is also investigated by both electrospray–corona simulation and experiment using a high-speed camera, yielding a significant improvement in the numerical prediction for Taylor cone formation. Numerical results indicate that liquid wetting on capillary nozzles would be a vital factor for the Taylor cone formation in numerical electrospray–corona discharge studies.

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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