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Experimental and numerical modeling of supersonic jets expanding into a rarefied medium. Part 1: Non-condensing flows. / Зарвин, Александр Евгеньевич; Дубровин, Кирилл Алексеевич; Ярков, Лев Владимирович et al.

In: Fluid Dynamics, Vol. 59, No. 5, 2024, p. 1677-1690.

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@article{7e4f8ecead6545b0aff77728ea586fac,
title = "Experimental and numerical modeling of supersonic jets expanding into a rarefied medium. Part 1: Non-condensing flows",
abstract = "This paper is the first part of a study aimed at developing methods for the experimental and numerical modeling of jet flows with significant rarefaction effects. The experimental measurements of flow parameters in jets expanding into a vacuum or highly rarefied medium are carried out on the modern gas-dynamic complex LEMPUS-2. The electron beam diagnostic (EBD) method was used for dimensional visualization of the flows and measurements of the absolute values of the local flow density. For the numerical simulation of a stationary axisymmetric nitrogen jet expanding from a sonic nozzle into a rarefied medium, a hybrid approach is employed: gas parameters in the dense flow region are determined using the solution of the Navier–Stokes equations, and in the rarefied flow region, using direct simulation Monte Carlo. The experimental and numerical methods are compared for this problem under conditions of no condensation. The results of the numerical calculations and experiments are compared with each other and with the published theoretical data. The close agreement of the results confirms the strong predictive ability of the methods used for the outflow of a noncondensable gas from sonic nozzles into a rarefied medium.",
author = "Зарвин, {Александр Евгеньевич} and Дубровин, {Кирилл Алексеевич} and Ярков, {Лев Владимирович} and Бондарь, {Евгений Александрович} and Зайцев, {Александр Васильевич} and Каляда, {Валерий Владимирович} and Яскин, {Александр Сергеевич}",
note = "This study was carried out at the Khristianovich Institute of Theoretical and Applied Mechanics and was supported by the Russian Science Foundation (project no. 22-19-00750).",
year = "2024",
doi = "10.1134/S0015462824604340",
language = "English",
volume = "59",
pages = "1677--1690",
journal = "Fluid Dynamics",
issn = "0015-4628",
publisher = "Maik Nauka-Interperiodica Publishing",
number = "5",

}

RIS

TY - JOUR

T1 - Experimental and numerical modeling of supersonic jets expanding into a rarefied medium. Part 1: Non-condensing flows

AU - Зарвин, Александр Евгеньевич

AU - Дубровин, Кирилл Алексеевич

AU - Ярков, Лев Владимирович

AU - Бондарь, Евгений Александрович

AU - Зайцев, Александр Васильевич

AU - Каляда, Валерий Владимирович

AU - Яскин, Александр Сергеевич

N1 - This study was carried out at the Khristianovich Institute of Theoretical and Applied Mechanics and was supported by the Russian Science Foundation (project no. 22-19-00750).

PY - 2024

Y1 - 2024

N2 - This paper is the first part of a study aimed at developing methods for the experimental and numerical modeling of jet flows with significant rarefaction effects. The experimental measurements of flow parameters in jets expanding into a vacuum or highly rarefied medium are carried out on the modern gas-dynamic complex LEMPUS-2. The electron beam diagnostic (EBD) method was used for dimensional visualization of the flows and measurements of the absolute values of the local flow density. For the numerical simulation of a stationary axisymmetric nitrogen jet expanding from a sonic nozzle into a rarefied medium, a hybrid approach is employed: gas parameters in the dense flow region are determined using the solution of the Navier–Stokes equations, and in the rarefied flow region, using direct simulation Monte Carlo. The experimental and numerical methods are compared for this problem under conditions of no condensation. The results of the numerical calculations and experiments are compared with each other and with the published theoretical data. The close agreement of the results confirms the strong predictive ability of the methods used for the outflow of a noncondensable gas from sonic nozzles into a rarefied medium.

AB - This paper is the first part of a study aimed at developing methods for the experimental and numerical modeling of jet flows with significant rarefaction effects. The experimental measurements of flow parameters in jets expanding into a vacuum or highly rarefied medium are carried out on the modern gas-dynamic complex LEMPUS-2. The electron beam diagnostic (EBD) method was used for dimensional visualization of the flows and measurements of the absolute values of the local flow density. For the numerical simulation of a stationary axisymmetric nitrogen jet expanding from a sonic nozzle into a rarefied medium, a hybrid approach is employed: gas parameters in the dense flow region are determined using the solution of the Navier–Stokes equations, and in the rarefied flow region, using direct simulation Monte Carlo. The experimental and numerical methods are compared for this problem under conditions of no condensation. The results of the numerical calculations and experiments are compared with each other and with the published theoretical data. The close agreement of the results confirms the strong predictive ability of the methods used for the outflow of a noncondensable gas from sonic nozzles into a rarefied medium.

U2 - 10.1134/S0015462824604340

DO - 10.1134/S0015462824604340

M3 - Article

VL - 59

SP - 1677

EP - 1690

JO - Fluid Dynamics

JF - Fluid Dynamics

SN - 0015-4628

IS - 5

ER -

ID: 61206699