2016
Numerical and experimental investigation of three-dimensional cavitating flow around the straight NACA2412 hydrofoil
SEDLÁŘ, Milan; Bin JI; Tomáš KRÁTKÝ; Tomáš REBOK; Rostislav HUZLÍK et. al.Základní údaje
Originální název
Numerical and experimental investigation of three-dimensional cavitating flow around the straight NACA2412 hydrofoil
Autoři
SEDLÁŘ, Milan (203 Česká republika); Bin JI (156 Čína); Tomáš KRÁTKÝ (203 Česká republika); Tomáš REBOK (203 Česká republika, domácí) a Rostislav HUZLÍK (203 Česká republika)
Vydání
Ocean Engineering, Elsevier Ltd. 2016, 0029-8018
Další údaje
Jazyk
angličtina
Typ výsledku
Článek v odborném periodiku
Obor
10305 Fluids and plasma physics
Stát vydavatele
Velká Británie a Severní Irsko
Utajení
není předmětem státního či obchodního tajemství
Odkazy
Impakt faktor
Impact factor: 1.894
Kód RIV
RIV/00216224:14610/16:00090480
Organizační jednotka
Ústav výpočetní techniky
UT WoS
000382338600029
EID Scopus
2-s2.0-84979282918
Klíčová slova anglicky
Cavitation; Vortex structures; 3D effects; LES; DES; SAS-SST
Štítky
Příznaky
Mezinárodní význam, Recenzováno
Změněno: 28. 4. 2020 16:06, Mgr. Alena Mokrá
Anotace
V originále
This work deals with the experimental and numerical investigation of unsteady cavitating flow around the straight NACA2412 hydrofoil with the span/chord ratio of 1.25 in the cavitation tunnel. The numerical simulations play the main part in this study; nevertheless the experimental work is also presented as an important background for validation of the results. A comprehensive CFD analysis has been carried out with three advanced turbulence models including the SAS-SST, LES-WALE and DES models. The main attention is focused on the prediction of interactions between the re-entrant flow and cavitation structures as well as the cavitation excited pressure. The monitored pressure fluctuations during the cavity cycles as well as the intervals between the dominant pressure pulses are discussed in detail. To capture side-wall effects, the whole hydrofoil and tunnel test section have been modelled, without any symmetry or periodic boundary conditions. The numerical simulations show, that the dominant frequencies of the cavity oscillation are best predicted by the SAS-SST turbulence model and the Detached Eddy Simulation. The Large Eddy Simulation has provided the best description of vortical structures in the rear part of the hydrofoil but it underestimates the side-wall effects and overestimates the dominant frequencies of the cavity oscillation.
Návaznosti
CZ.1.05/3.2.00/08.0144, interní kód MU |
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ED3.2.00/08.0144, projekt VaV |
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LM2015085, projekt VaV |
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