Large-Eddy Simulation of Flow and Convective Heat Transfer in a Gas Turbine Can Combustor With Synthetic Inlet Turbulence

被引:14
作者
Patil, Sunil [1 ]
Tafti, Danesh [1 ]
机构
[1] Virginia Tech, Blacksburg, VA 24061 USA
来源
JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME | 2012年 / 134卷 / 07期
关键词
Flow velocity - Heat transfer coefficients - Combustors - Reynolds number - Heat convection - Navier Stokes equations - Stochastic systems - Large eddy simulation - Turbulence;
D O I
10.1115/1.4006081
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Large eddy simulations of swirling flow and the associated convective heat transfer in a gas turbine can combustor under cold flow conditions for Reynolds numbers of 50,000 and 80,000 with a characteristic Swirl number of 0.7 are carried out. A precursor Reynolds averaged Navier-Stokes (RANS) simulation is used to provide the inlet boundary conditions to the large-eddy simulation (LES) computational domain, which includes only the can combustor. A stochastic procedure based on the classical view of turbulence as a superposition of the coherent structures is used to simulate the turbulence at the inlet plane of the computational domain using the mean flow velocity and Reynolds stress data from the precursor RANS simulation. To further reduce the overall computational resource requirement and the total computational time, the near wall region is modeled using a zonal two layer model (WMLES). A novel formulation in the generalized co-ordinate system is used for the solution of effective tangential velocity and temperature in the inner layer virtual mesh. The WMLES predictions are compared with the experimental data of Patil (2011, "Experimental and Numerical Investigation of Convective Heat Transfer in Gas Turbine Can Combustor," ASME J. Turbomach., 133(1), p. 011028) for the local heat transfer distribution on the combustor liner wall obtained using robust infrared thermography technique. The heat transfer coefficient distribution on the liner wall predicted from the WMLES is in good agreement with experimental values. The location and the magnitude of the peak heat transfer are predicted in very close agreement with the experiments. [DOI: 10.1115/1.4006081]
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页数:9
相关论文
共 22 条
[1]   Velocity measurements and turbulence statistics of a confined isothermal swirling flow [J].
Ahmed, SA .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1998, 17 (03) :256-264
[2]  
[Anonymous], M JAK MEM AW LECT
[3]  
[Anonymous], J THERMAL SCI ENG AP
[4]   COMPUTATIONAL AERODYNAMICS DEVELOPMENT AND OUTLOOK [J].
CHAPMAN, DR .
AIAA JOURNAL, 1979, 17 (12) :1293-1313
[5]   A DYNAMIC SUBGRID-SCALE EDDY VISCOSITY MODEL [J].
GERMANO, M ;
PIOMELLI, U ;
MOIN, P ;
CABOT, WH .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1991, 3 (07) :1760-1765
[6]   LES studies of the flow in a swirl gas combustor [J].
Grinstein, FF ;
Fureby, C .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2005, 30 :1791-1798
[7]   A synthetic-eddy-method for generating inflow conditions for large-eddy simulations [J].
Jarrin, N. ;
Benhamadouche, S. ;
Laurence, D. ;
Prosser, R. .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2006, 27 (04) :585-593
[8]   Large-eddy simulation of a gas turbine combustor flow [J].
Kim, WW ;
Menon, S ;
Mongia, HC .
COMBUSTION SCIENCE AND TECHNOLOGY, 1999, 143 (1-6) :25-+
[9]   EXPERIMENTAL-STUDY OF TURBULENT SWIRLING FLOW IN A STRAIGHT PIPE [J].
KITOH, O .
JOURNAL OF FLUID MECHANICS, 1991, 225 :445-479
[10]   A PROPOSED MODIFICATION OF THE GERMANO-SUBGRID-SCALE CLOSURE METHOD [J].
LILLY, DK .
PHYSICS OF FLUIDS A-FLUID DYNAMICS, 1992, 4 (03) :633-635