The effect of normal electric field on the evolution of immiscible Rayleigh-Taylor instability
Manipulation of the Rayleigh-Taylor instability using an external electric field has been the subject of many studies. However, most of these studies are focused on early stages of the evolution. In this work, the long-term evolution of the instability is investigated, focusing on the forces acting...
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Published in | Theoretical and computational fluid dynamics Vol. 30; no. 5; pp. 469 - 483 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.10.2016
Springer Springer Nature B.V |
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Online Access | Get full text |
ISSN | 0935-4964 1432-2250 |
DOI | 10.1007/s00162-016-0390-0 |
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Abstract | Manipulation of the Rayleigh-Taylor instability using an external electric field has been the subject of many studies. However, most of these studies are focused on early stages of the evolution. In this work, the long-term evolution of the instability is investigated, focusing on the forces acting on the interface between the two fluids. To this end, numerical simulations are carried out at various electric permittivity and conductivity ratios as well as electric field intensities using Smoothed Particle Hydrodynamics method. The electric field is applied in parallel to gravity to maintain unstable evolution. The results show that increasing top-to-bottom permittivity ratio increases the rising velocity of the bubble while hindering the spike descent. The opposite trend is observed for increasing top-to-bottom conductivity ratio. These effects are amplified at larger electric field intensities, resulting in narrower structures as the response to the excitation is non-uniform along the interface. |
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AbstractList | Manipulation of the Rayleigh-Taylor instability using an external electric field has been the subject of many studies. However, most of these studies are focused on early stages of the evolution. In this work, the long-term evolution of the instability is investigated, focusing on the forces acting on the interface between the two fluids. To this end, numerical simulations are carried out at various electric permittivity and conductivity ratios as well as electric field intensities using Smoothed Particle Hydrodynamics method. The electric field is applied in parallel to gravity to maintain unstable evolution. The results show that increasing top-to-bottom permittivity ratio increases the rising velocity of the bubble while hindering the spike descent. The opposite trend is observed for increasing top-to-bottom conductivity ratio. These effects are amplified at larger electric field intensities, resulting in narrower structures as the response to the excitation is non-uniform along the interface. Manipulation of the Rayleigh-Taylor instability using an external electric field has been the subject of many studies. However, most of these studies are focused on early stages of the evolution. In this work, the long-term evolution of the instability is investigated, focusing on the forces acting on the interface between the two fluids. To this end, numerical simulations are carried out at various electric permittivity and conductivity ratios as well as electric field intensities using Smoothed Particle Hydrodynamics method. The electric field is applied in parallel to gravity to maintain unstable evolution. The results show that increasing top-to-bottom permittivity ratio increases the rising velocity of the bubble while hindering the spike descent. The opposite trend is observed for increasing top-to-bottom conductivity ratio. These effects are amplified at larger electric field intensities, resulting in narrower structures as the response to the excitation is non-uniform along the interface. Keywords Smoothed Particle Hydrodynamics * Rayleigh-Taylor Instability * Electrohydrodynamics |
Audience | Academic |
Author | Feng, James J. Ozbulut, Murat Yildiz, Mehmet Tofighi, Nima |
Author_xml | – sequence: 1 givenname: Nima surname: Tofighi fullname: Tofighi, Nima organization: Faculty of Engineering and Natural Sciences (FENS), Sabanci University – sequence: 2 givenname: Murat surname: Ozbulut fullname: Ozbulut, Murat organization: Faculty of Engineering and Natural Sciences (FENS), Sabanci University – sequence: 3 givenname: James J. surname: Feng fullname: Feng, James J. organization: Department of Mathematics, University of British Columbia, Department of Chemical and Biological Engineering, University of British Columbia – sequence: 4 givenname: Mehmet surname: Yildiz fullname: Yildiz, Mehmet email: meyildiz@sabanciuniv.edu organization: Faculty of Engineering and Natural Sciences (FENS), Sabanci University |
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SubjectTerms | Analysis Classical and Continuum Physics Computational fluid dynamics Computational Science and Engineering Conductivity Dielectric constant Electric fields Electric properties Electrical conductivity Engineering Engineering Fluid Dynamics Evolution Fluid dynamics Hydrodynamics Instability Mathematical models Numerical analysis Original Article Permittivity Rayleigh number Rayleigh-Taylor instability |
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Title | The effect of normal electric field on the evolution of immiscible Rayleigh-Taylor instability |
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