Moffatt eddies in electrohydrodynamics flows: numerical simulations and analyses
We study numerically a sequence of eddies in two-dimensional electrohydrodynamics (EHD) flows of a dielectric liquid, driven by an electric potential difference between a hyperbolic blade electrode and a flat plate electrode (or the blade–plate configuration). The electrically driven flow impinges o...
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Published in | Journal of fluid mechanics Vol. 953 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Cambridge, UK
Cambridge University Press
25.12.2022
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Subjects | |
Online Access | Get full text |
ISSN | 0022-1120 1469-7645 |
DOI | 10.1017/jfm.2022.943 |
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Abstract | We study numerically a sequence of eddies in two-dimensional electrohydrodynamics (EHD) flows of a dielectric liquid, driven by an electric potential difference between a hyperbolic blade electrode and a flat plate electrode (or the blade–plate configuration). The electrically driven flow impinges on the plate to generate vortices, which resemble Moffatt eddies (Moffatt, J. Fluid Mech., vol. 18, 1964, pp. 1–18). Such a phenomenon in EHD was first reported in the experimental work of Perri et al. (J. Fluid Mech., vol. 900, 2020, A12). We conduct direct numerical simulations of the EHD flow with three Moffatt-type eddies in a large computational domain at moderate electric Rayleigh numbers ($T$, quantifying the strength of the electric field). The ratios of size and intensity of the adjacent eddies are examined, and they can be compared favourably to the theoretical prediction of Moffatt; interestingly, the quantitative comparison is remarkably accurate for the two eddies in the far field. Our investigation also shows that a larger $T$ strengthens the vortex intensity, and a stronger charge diffusion effect enlarges the vortex size. A sufficiently large $T$ can further result in an oscillating flow, consistent with the experimental observation. In addition, a global stability analysis of the steady blade–plate EHD flow is conducted. The global mode is characterised in detail at different values of $T$. When $T$ is large, the confinement effect of the geometry in the centre region may lead to an increased oscillation frequency. This work contributes to the quantitative characterisation of the Moffatt-type eddies in EHD flows. |
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AbstractList | We study numerically a sequence of eddies in two-dimensional electrohydrodynamics (EHD) flows of a dielectric liquid, driven by an electric potential difference between a hyperbolic blade electrode and a flat plate electrode (or the blade–plate configuration). The electrically driven flow impinges on the plate to generate vortices, which resemble Moffatt eddies (Moffatt,
J. Fluid Mech.
, vol. 18, 1964, pp. 1–18). Such a phenomenon in EHD was first reported in the experimental work of Perri
et al.
(
J. Fluid Mech.
, vol. 900, 2020, A12). We conduct direct numerical simulations of the EHD flow with three Moffatt-type eddies in a large computational domain at moderate electric Rayleigh numbers (
$T$
, quantifying the strength of the electric field). The ratios of size and intensity of the adjacent eddies are examined, and they can be compared favourably to the theoretical prediction of Moffatt; interestingly, the quantitative comparison is remarkably accurate for the two eddies in the far field. Our investigation also shows that a larger
$T$
strengthens the vortex intensity, and a stronger charge diffusion effect enlarges the vortex size. A sufficiently large
$T$
can further result in an oscillating flow, consistent with the experimental observation. In addition, a global stability analysis of the steady blade–plate EHD flow is conducted. The global mode is characterised in detail at different values of
$T$
. When
$T$
is large, the confinement effect of the geometry in the centre region may lead to an increased oscillation frequency. This work contributes to the quantitative characterisation of the Moffatt-type eddies in EHD flows. We study numerically a sequence of eddies in two-dimensional electrohydrodynamics (EHD) flows of a dielectric liquid, driven by an electric potential difference between a hyperbolic blade electrode and a flat plate electrode (or the blade–plate configuration). The electrically driven flow impinges on the plate to generate vortices, which resemble Moffatt eddies (Moffatt, J. Fluid Mech., vol. 18, 1964, pp. 1–18). Such a phenomenon in EHD was first reported in the experimental work of Perri et al. (J. Fluid Mech., vol. 900, 2020, A12). We conduct direct numerical simulations of the EHD flow with three Moffatt-type eddies in a large computational domain at moderate electric Rayleigh numbers (\(T\), quantifying the strength of the electric field). The ratios of size and intensity of the adjacent eddies are examined, and they can be compared favourably to the theoretical prediction of Moffatt; interestingly, the quantitative comparison is remarkably accurate for the two eddies in the far field. Our investigation also shows that a larger \(T\) strengthens the vortex intensity, and a stronger charge diffusion effect enlarges the vortex size. A sufficiently large \(T\) can further result in an oscillating flow, consistent with the experimental observation. In addition, a global stability analysis of the steady blade–plate EHD flow is conducted. The global mode is characterised in detail at different values of \(T\). When \(T\) is large, the confinement effect of the geometry in the centre region may lead to an increased oscillation frequency. This work contributes to the quantitative characterisation of the Moffatt-type eddies in EHD flows. |
ArticleNumber | A14 |
Author | He, Xuerao Zhang, Mengqi Sun, Zhihao |
Author_xml | – sequence: 1 givenname: Xuerao orcidid: 0000-0003-3239-9522 surname: He fullname: He, Xuerao organization: 1Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, 117575 Singapore – sequence: 2 givenname: Zhihao surname: Sun fullname: Sun, Zhihao organization: 1Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, 117575 Singapore – sequence: 3 givenname: Mengqi orcidid: 0000-0002-8354-7129 surname: Zhang fullname: Zhang, Mengqi email: mpezmq@nus.edu.sg organization: 1Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, 117575 Singapore |
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Snippet | We study numerically a sequence of eddies in two-dimensional electrohydrodynamics (EHD) flows of a dielectric liquid, driven by an electric potential... |
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SubjectTerms | Computer applications Diffusion effects Direct numerical simulation Eddies Electric field strength Electric fields Electric potential Electrodes Electrohydrodynamics Experiments Flat plates Flow stability Fluid flow Geometry Interdisciplinary subjects JFM Papers Marine fishes Oscillating flow Reynolds number Simulation Stability analysis Two dimensional flow Vortices |
Title | Moffatt eddies in electrohydrodynamics flows: numerical simulations and analyses |
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