A CFD Study of Low Reynolds Number Flow in High Lift Cascades

TitleA CFD Study of Low Reynolds Number Flow in High Lift Cascades
Publication TypeConference Proceedings
Year of Publication2010
AuthorsPacciani R, Marconcini M, Arnone A, Bertini F
Conference NameASME Turbo Expo
Volume7: Turbomachinery, Parts A, B and C
Pagination1525–1534
PublisherAMER SOC MECHANICAL ENGINEERS, THREE PARK AVENUE, NEW YORK, NY 10016-5990 USA
Conference LocationGlasgow, UK, 14-18 June
ISBN Number978-0-7918-4402-1
Accession NumberWOS:000291010300131
Other NumbersScopus 2-s2.0-82055175121
Abstract

A study of the separated flow in high-lift, low-Reynolds-number cascade, has been carried out using a novel three-equation, transition-sensitive, turbulence model. It is based on the coupling of an additional transport equation for the so-called laminar kinetic energy with the Wilcox k-omega model. Such an approach takes into account the increase of the non-turbulent fluctuations in the pre-transitional and transitional region. Two high-lift cascades (T106C and T108), recently tested at the von Kármán Institute in the framework of the European project TATMo (Turbulence and Transition Modelling for Special Turbomachinery Applications), were analyzed. The two cascades have different loading distributions and suction side diffusion rates, and therefore also different separation bubble characteristics and loss levels. The analyzed Reynolds number values span the whole range typically encountered in aeroengines low-pressure turbines operations. Several expansion ratios for steady inflow conditions characterized by different freestream turbulence intensities were considered. A detailed comparison between measurements and computations, including bubble structural characteristics, will be presented and discussed. Results with the proposed model show its ability to predict the evolution of the separated flow region, including bubble bursting phenomena, in high-lift cascades operating in LP-turbine conditions.

Notes

ASME paper GT2010-23300

URLhttp://proceedings.asmedigitalcollection.asme.org/proceeding.aspx?articleid=1609980
DOI10.1115/GT2010-23300
Refereed DesignationRefereed