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3D Numerical Simulation of Hydrodynamics and Heat Transfer in the Taylor Flow. / Alekseev, M. V.; Vozhakov, I. S.

In: Journal of Engineering Thermophysics, Vol. 31, No. 2, 06.2022, p. 299-308.

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Alekseev MV, Vozhakov IS. 3D Numerical Simulation of Hydrodynamics and Heat Transfer in the Taylor Flow. Journal of Engineering Thermophysics. 2022 Jun;31(2):299-308. doi: 10.1134/S1810232822020102

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Alekseev, M. V. ; Vozhakov, I. S. / 3D Numerical Simulation of Hydrodynamics and Heat Transfer in the Taylor Flow. In: Journal of Engineering Thermophysics. 2022 ; Vol. 31, No. 2. pp. 299-308.

BibTeX

@article{bcb5f944dc4849bf8e5033748938a1a8,
title = "3D Numerical Simulation of Hydrodynamics and Heat Transfer in the Taylor Flow",
abstract = "The two-phase slug flow, or the Taylor flow, is used in a variety of applications, including efficient heat transfer in pulsating heat pipes (PHPs). The heat transfer efficiency is due to the presence of liquid thin film surrounding the bubble and separating it from the hot wall. The thin film facilitates much faster heat dissipation by evaporation as compared with single-phase cooling. The thinness of the liquid film also creates significant difficulty for numerical simulation of Taylor bubbles, and the lower is the bubble velocity, the thinner is the liquid film. We carried out a 3D simulation of the hydrodynamics and heat transfer during motion of Taylor bubbles of gas in a capillary tube with a diameter of 2 mm in the velocity range of 0.05–0.5 m/s, resolving the near-wall region in detail. The distributions of the friction coefficient and heat flux on the wall along the bubble motion were obtained. It was shown that complex cascade recirculation zones appeared near the bubble and led to significant change in both shear stresses and heat flux near the wall as compared with a single-phase flow.",
author = "Alekseev, {M. V.} and Vozhakov, {I. S.}",
note = "Funding Information: The study was supported by the Russian Science Foundation (project no. 20-79-10096). The computing resources were provided by the Joint Supercomputer Center Cascade of the Institute of Thermophysics of the Siberian Branch of the Russian Academy of Sciences and Novosibirsk State University. Publisher Copyright: {\textcopyright} 2022, Pleiades Publishing, Ltd.",
year = "2022",
month = jun,
doi = "10.1134/S1810232822020102",
language = "English",
volume = "31",
pages = "299--308",
journal = "Journal of Engineering Thermophysics",
issn = "1810-2328",
publisher = "Maik Nauka-Interperiodica Publishing",
number = "2",

}

RIS

TY - JOUR

T1 - 3D Numerical Simulation of Hydrodynamics and Heat Transfer in the Taylor Flow

AU - Alekseev, M. V.

AU - Vozhakov, I. S.

N1 - Funding Information: The study was supported by the Russian Science Foundation (project no. 20-79-10096). The computing resources were provided by the Joint Supercomputer Center Cascade of the Institute of Thermophysics of the Siberian Branch of the Russian Academy of Sciences and Novosibirsk State University. Publisher Copyright: © 2022, Pleiades Publishing, Ltd.

PY - 2022/6

Y1 - 2022/6

N2 - The two-phase slug flow, or the Taylor flow, is used in a variety of applications, including efficient heat transfer in pulsating heat pipes (PHPs). The heat transfer efficiency is due to the presence of liquid thin film surrounding the bubble and separating it from the hot wall. The thin film facilitates much faster heat dissipation by evaporation as compared with single-phase cooling. The thinness of the liquid film also creates significant difficulty for numerical simulation of Taylor bubbles, and the lower is the bubble velocity, the thinner is the liquid film. We carried out a 3D simulation of the hydrodynamics and heat transfer during motion of Taylor bubbles of gas in a capillary tube with a diameter of 2 mm in the velocity range of 0.05–0.5 m/s, resolving the near-wall region in detail. The distributions of the friction coefficient and heat flux on the wall along the bubble motion were obtained. It was shown that complex cascade recirculation zones appeared near the bubble and led to significant change in both shear stresses and heat flux near the wall as compared with a single-phase flow.

AB - The two-phase slug flow, or the Taylor flow, is used in a variety of applications, including efficient heat transfer in pulsating heat pipes (PHPs). The heat transfer efficiency is due to the presence of liquid thin film surrounding the bubble and separating it from the hot wall. The thin film facilitates much faster heat dissipation by evaporation as compared with single-phase cooling. The thinness of the liquid film also creates significant difficulty for numerical simulation of Taylor bubbles, and the lower is the bubble velocity, the thinner is the liquid film. We carried out a 3D simulation of the hydrodynamics and heat transfer during motion of Taylor bubbles of gas in a capillary tube with a diameter of 2 mm in the velocity range of 0.05–0.5 m/s, resolving the near-wall region in detail. The distributions of the friction coefficient and heat flux on the wall along the bubble motion were obtained. It was shown that complex cascade recirculation zones appeared near the bubble and led to significant change in both shear stresses and heat flux near the wall as compared with a single-phase flow.

UR - http://www.scopus.com/inward/record.url?scp=85132802818&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/cfd4a4f2-b089-3142-9293-e6bfd247f2a2/

U2 - 10.1134/S1810232822020102

DO - 10.1134/S1810232822020102

M3 - Article

AN - SCOPUS:85132802818

VL - 31

SP - 299

EP - 308

JO - Journal of Engineering Thermophysics

JF - Journal of Engineering Thermophysics

SN - 1810-2328

IS - 2

ER -

ID: 36482017