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Numerical treatment of electrical properties in two-phase electrohydrodynamic systems
ID Zupan, Bor (Avtor), ID Zahoor, Rizwan (Avtor), ID Bajt, Saša (Avtor), ID Šarler, Božidar (Avtor)

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Izvleček
Generation and manipulation of micrometer-sized liquid jets is highly relevant for applications like sample delivery in serial femtosecond crystallography. A promising method combines gas flow focusing with electrospraying but remains underexplored due to numerical limitations regarding high interfacial electric property gradients. This study addresses this challenge by assessing different approaches for electrohydrodynamic (EHD) numerical treatment of two-phase interfaces within the finite volume method and the volume-of-fluid framework. A new geometric mean interpolation technique was developed to address the limitations of high electric conductivity-ratio gas–liquid systems. The technique was related to the established EHD modeling approaches, comprising two electric force implementations and two electric property interpolation methods. Three verification tests involving no flow conditions demonstrated consistent performance of all solvers regarding the electric equations, and they were charge-conservative. Validation on a free boundary problem experiment revealed varying levels of agreement. Results show that the Coulomb-polarization force implementation combined with weighted harmonic mean interpolation provides the most accurate and physically consistent modeling of electric forces at fluid interfaces, followed by the novel geometric mean technique. The model based on the Coulomb-polarization force is applied to simulate electro-flow-focused jets, capturing the complex interplay of hydrodynamic and electrostatic forces in a high-velocity co-flow configuration. While weighted harmonic mean interpolation yields the highest fidelity regarding the electric force magnitude and electric charge position, it fails for extremely low gas conductivities. The proposed geometric mean interpolation provides a stable alternative for simulating EHD two-phase flows, particularly in configurations with large interfacial electric property gradients.

Jezik:Angleški jezik
Ključne besede:electrohydrodynamic systems, electrical properties, finite volume methods, computational fluid dynamics
Vrsta gradiva:Članek v reviji
Tipologija:1.01 - Izvirni znanstveni članek
Organizacija:FS - Fakulteta za strojništvo
Status publikacije:Objavljeno
Različica publikacije:Objavljena publikacija
Leto izida:2025
Št. strani:19 str.
Številčenje:Vol. 37, iss. 8, art. 083353
PID:20.500.12556/RUL-171190 Povezava se odpre v novem oknu
UDK:532.5:519.6
ISSN pri članku:1070-6631
DOI:10.1063/5.0281409 Povezava se odpre v novem oknu
COBISS.SI-ID:245855235 Povezava se odpre v novem oknu
Datum objave v RUL:18.08.2025
Število ogledov:205
Število prenosov:76
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Gradivo je del revije

Naslov:Physics of fluids
Skrajšan naslov:Phys. fluids
Založnik:American Institute of Physics
ISSN:1070-6631
COBISS.SI-ID:37828865 Povezava se odpre v novem oknu

Sekundarni jezik

Jezik:Slovenski jezik
Ključne besede:elektrohidrodinamični sistemi, električne lastnosti, metoda končnih elementov, računska dinamika tekočin

Projekti

Financer:ARIS - Javna agencija za znanstvenoraziskovalno in inovacijsko dejavnost Republike Slovenije
Številka projekta:P2-0162
Naslov:Večfazni sistemi

Financer:ARIS - Javna agencija za znanstvenoraziskovalno in inovacijsko dejavnost Republike Slovenije
Številka projekta:J2-4477
Naslov:RAZVOJ INOVATIVNIH BREZMREŽNIH METOD ZA VEČFIZIKALNE IN VEČNIVOJSKE SIMULACIJE VRHUNSKIH TEHNOLOGIJ

Financer:Drugi - Drug financer ali več financerjev
Program financ.:Deutsche Forschungsgemeinschaft
Številka projekta:EXC 2056, project ID: 390715994
Naslov:Cluster of Excellence “CUI: Advanced Imaging of Matter”

Financer:Drugi - Drug financer ali več financerjev
Naslov:Innovative methods for imaging with the use of x-ray free-electron laser (XFEL) and synchrotron sources: simulation of gas-focused micro-jets

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