Modeling rotating and swirling turbulent flows: A perpetual challenge

被引:158
作者
Jakirlic, S
Hanjalic, K
Tropea, C
机构
[1] Tech Univ Darmstadt, Chair Fluid Mech & Aerodynam, D-64287 Darmstadt, Germany
[2] Delft Univ Technol, Fac Appl Phys, NL-2628 CJ Delft, Netherlands
关键词
D O I
10.2514/2.1560
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Several types of rotating and swirling flows for a range of Reynolds numbers and rotation rates or swirl intensities have been studied computationally, aimed at identifying specific features that require special consideration in turbulence modeling. The flows considered include turbulent channel flows subjected to streamwise and spanwise rotation, with stationary and moving boundaries; developing and fully developed flows in axially rotating pipes; and swirling flows in combustor geometries and long pipes. Computations performed with three versions of the second moment closure and two eddy-viscosity models show that the second-moment models are superior, especially when the equations are integrated up to the wall. Such models reproduced the main flow parameters for all flows considered in acceptable agreement with the available experimental data and direct numerical simulations. However, challenges still remain in predicting accurately some specific flow features, such as capturing the transition from a free vortex to solid-body rotation in along straight pipe with a weak swirl, or reproducing the normal stress components in the core region. Also, the so-called (uw) over bar anomaly in fully developed flows with streamwise rotation remains questionable. For rotating flows, the low-Reynolds-number models yield a somewhat premature flow relaminarization at high rotation speeds.
引用
收藏
页码:1984 / 1996
页数:13
相关论文
共 58 条
[11]   GROUND EFFECTS ON PRESSURE-FLUCTUATIONS IN ATMOSPHERIC BOUNDARY-LAYER [J].
GIBSON, MM ;
LAUNDER, BE .
JOURNAL OF FLUID MECHANICS, 1978, 86 (JUN) :491-511
[12]  
HALLBACK M, 1993, P 5 INT S REF FLOW M, P65
[13]   SENSITIZING THE DISSIPATION EQUATION TO IRROTATIONAL STRAINS [J].
HANJALIC, K ;
LAUNDER, BE .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1980, 102 (01) :34-40
[14]   Contribution towards the second-moment closure modelling of separating turbulent flows [J].
Hanjalic, K ;
Jakirlic, S .
COMPUTERS & FLUIDS, 1998, 27 (02) :137-156
[15]   Modeling turbulent wall flows subjected to strong pressure variations [J].
Hanjalic, K ;
Hadzic, I ;
Jakirlic, S .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1999, 121 (01) :57-64
[16]   PREDICTIONS OF THE LAMINARIZATION PHENOMENA IN AN AXIALLY ROTATING PIPE-FLOW [J].
HIRAI, S ;
TAKAGI, T ;
MATSUMOTO, M .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1988, 110 (04) :424-430
[17]   COMPUTATION OF HIGHLY SWIRLING CONFINED FLOW WITH A REYNOLDS STRESS TURBULENCE MODEL [J].
HOGG, S ;
LESCHZINER, MA .
AIAA JOURNAL, 1989, 27 (01) :57-63
[18]   FLOW PREDICTION IN ROTATING DUCTS USING CORIOLIS-MODIFIED TURBULENCE MODELS [J].
HOWARD, JHG ;
PATANKAR, SV ;
BORDYNUIK, RM .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1980, 102 (04) :456-461
[19]   Turbulent characteristics of the flow in an axially rotating pipe [J].
Imao, S ;
Itoh, M ;
Takeyoshi, H .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1996, 17 (05) :444-451
[20]   HOMOGENEOUS TURBULENCE IN THE PRESENCE OF ROTATION [J].
JACQUIN, L ;
LEUCHTER, O ;
CAMBON, C ;
MATHIEU, J .
JOURNAL OF FLUID MECHANICS, 1990, 220 :1-52