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  5. Predictions of Conjugate Heat Transfer in Turbulent Channel Flow Using Advanced Wall-Modeled Large Eddy Simulation Techniques
 
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2021
Zweitveröffentlichung
Artikel
Verlagsversion

Predictions of Conjugate Heat Transfer in Turbulent Channel Flow Using Advanced Wall-Modeled Large Eddy Simulation Techniques

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Hauptpublikation
entropy-23-00725-v2.pdf
CC BY 4.0 International
Format: Adobe PDF
Size: 6.73 MB
TUDa URI
tuda/7347
URN
urn:nbn:de:tuda-tuprints-193675
DOI
10.26083/tuprints-00019367
Autor:innen
Li, Yongxiang ORCID 0000-0001-7172-4653
Ries, Florian ORCID 0000-0002-6223-1774
Nishad, Kaushal ORCID 0000-0002-1958-4670
Sadiki, Amsini ORCID 0000-0003-4058-746X
Kurzbeschreibung (Abstract)

In this paper, advanced wall-modeled large eddy simulation (LES) techniques are used to predict conjugate heat transfer processes in turbulent channel flow. Thereby, the thermal energy transfer process involves an interaction of conduction within a solid body and convection from the solid surface by fluid motion. The approaches comprise a two-layer RANS–LES approach (zonal LES), a hybrid RANS–LES representative, the so-called improved delayed detached eddy simulation method (IDDES) and a non-equilibrium wall function model (WFLES), respectively. The results obtained are evaluated in comparison with direct numerical simulation (DNS) data and wall-resolved LES including thermal cases of large Reynolds numbers where DNS data are not available in the literature. It turns out that zonal LES, IDDES and WFLES are able to predict heat and fluid flow statistics along with wall shear stresses and Nusselt numbers accurately and that are physically consistent. Furthermore, it is found that IDDES, WFLES and zonal LES exhibit significantly lower computational costs than wall-resolved LES. Since IDDES and especially zonal LES require considerable extra work to generate numerical grids, this study indicates in particular that WFLES offers a promising near-wall modeling strategy for LES of conjugated heat transfer problems. Finally, an entropy generation analysis using the various models showed that the viscous entropy production is zero inside the solid region, peaks at the solid–fluid interface and decreases rapidly with increasing wall distance within the fluid region. Except inside the solid region, where steep temperature gradients lead to high (thermal) entropy generation rates, a similar behavior is monitored for the entropy generation by heat transfer process.

Freie Schlagworte

turbulent flows

conjugate heat transf...

large eddy simulation...

near-wall modeling

wall functions

zonal RANS–LES

improved delayed deta...

turbulent heated chan...

entropy generation an...

Sprache
Englisch
Fachbereich/-gebiet
16 Fachbereich Maschinenbau > Fachgebiet Reaktive Strömungen und Messtechnik (RSM)
DDC
600 Technik, Medizin, angewandte Wissenschaften > 600 Technik
Institution
Universitäts- und Landesbibliothek Darmstadt
Ort
Darmstadt
Titel der Zeitschrift / Schriftenreihe
Entropy
Jahrgang der Zeitschrift
23
Heftnummer der Zeitschrift
6
ISSN
1099-4300
Verlag
MDPI
Publikationsjahr der Erstveröffentlichung
2021
Verlags-DOI
10.3390/e23060725
PPN
484801023

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