Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow

The results of eddy-resolving numerical simulation of a turbulent mixed convection in a system of three identical, rapidly rotating annular cavities are presented. The cavities are heated from the side of the disk surfaces and from the periphery (the same distribution of the surface temperature is s...

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Main Authors: Smirnov Evgeny, Smirnov Sergei, Abramov Alexey, Galaev Sergey
Format: Article
Language:English
Published: Peter the Great St.Petersburg Polytechnic University 2021-09-01
Series:St. Petersburg Polytechnical University Journal: Physics and Mathematics
Subjects:
Online Access:https://physmath.spbstu.ru/article/2021.53.02/
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spelling doaj-e4117c9905d0486db6b966d08b3709322021-09-28T07:20:18ZengPeter the Great St.Petersburg Polytechnic UniversitySt. Petersburg Polytechnical University Journal: Physics and Mathematics2405-72232021-09-0114310.18721/JPM.1430220714726Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflowSmirnov Evgeny0Smirnov Sergei1https://orcid.org/0000-0002-3972-9259Abramov Alexey2Galaev Sergey3https://orcid.org/0000-0001-7964-0200Peter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityPeter the Great St. Petersburg Polytechnic UniversityThe results of eddy-resolving numerical simulation of a turbulent mixed convection in a system of three identical, rapidly rotating annular cavities are presented. The cavities are heated from the side of the disk surfaces and from the periphery (the same distribution of the surface temperature is set for all the cavities), and heat removal proceeds by an axial air throughflow in the narrow channel, annular within the cavity system. The computations based on the Implicit LES method have been carried out in view of the conditions close to the experiments known from the literature for a single cavity; the rotational Reynolds number was 200,000, the grid dimension was 17 million cells. The complex multiscale flow structure and the influence of the input aerodynamic and thermal conditions, which are not identical for the cavities included in the system, on the local heat transfer from disk surfaces are discussed.https://physmath.spbstu.ru/article/2021.53.02/mixed convectionrapidly rotating annular cavityaxial throughflowglobal circulation
collection DOAJ
language English
format Article
sources DOAJ
author Smirnov Evgeny
Smirnov Sergei
Abramov Alexey
Galaev Sergey
spellingShingle Smirnov Evgeny
Smirnov Sergei
Abramov Alexey
Galaev Sergey
Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
St. Petersburg Polytechnical University Journal: Physics and Mathematics
mixed convection
rapidly rotating annular cavity
axial throughflow
global circulation
author_facet Smirnov Evgeny
Smirnov Sergei
Abramov Alexey
Galaev Sergey
author_sort Smirnov Evgeny
title Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
title_short Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
title_full Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
title_fullStr Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
title_full_unstemmed Turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
title_sort turbulent mixed convection within rapidly rotating heated annular cavities with an axial throughflow
publisher Peter the Great St.Petersburg Polytechnic University
series St. Petersburg Polytechnical University Journal: Physics and Mathematics
issn 2405-7223
publishDate 2021-09-01
description The results of eddy-resolving numerical simulation of a turbulent mixed convection in a system of three identical, rapidly rotating annular cavities are presented. The cavities are heated from the side of the disk surfaces and from the periphery (the same distribution of the surface temperature is set for all the cavities), and heat removal proceeds by an axial air throughflow in the narrow channel, annular within the cavity system. The computations based on the Implicit LES method have been carried out in view of the conditions close to the experiments known from the literature for a single cavity; the rotational Reynolds number was 200,000, the grid dimension was 17 million cells. The complex multiscale flow structure and the influence of the input aerodynamic and thermal conditions, which are not identical for the cavities included in the system, on the local heat transfer from disk surfaces are discussed.
topic mixed convection
rapidly rotating annular cavity
axial throughflow
global circulation
url https://physmath.spbstu.ru/article/2021.53.02/
work_keys_str_mv AT smirnovevgeny turbulentmixedconvectionwithinrapidlyrotatingheatedannularcavitieswithanaxialthroughflow
AT smirnovsergei turbulentmixedconvectionwithinrapidlyrotatingheatedannularcavitieswithanaxialthroughflow
AT abramovalexey turbulentmixedconvectionwithinrapidlyrotatingheatedannularcavitieswithanaxialthroughflow
AT galaevsergey turbulentmixedconvectionwithinrapidlyrotatingheatedannularcavitieswithanaxialthroughflow
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