ASSESSMENT OF TURBULENCE MODELING FOR ENGINEERING PREDICTION OF SWIRLING VORTICES IN THE NEAR BURNER ZONE

被引:93
作者
WEBER, R
VISSER, BM
BOYSAN, F
机构
[1] Flow Simulation Ltd., Sheffield
关键词
fluid dynamics; swirling confined flows; turbulence modeling;
D O I
10.1016/0142-727X(90)90041-9
中图分类号
O414.1 [热力学];
学科分类号
摘要
Measurements and computations of a number of isothermal swirling flows are reported. The focus is on two categories of swirling flows: high confinement flows in geometries representative of gas turbines and low confinement flows encountered in industrial and experimental furnaces. The flow geometries consisted of a solid-body vortex generator, a burner quarl, and a cylindrical furnace. The measurement techniques utilized are discussed, with emphasis on measurement errors. In order to identify the flow features that the computer models are expected to predict, the physics of the flows is treated in detail. In the finite difference computations, three models of turbulence were tested: a Reynolds stress model (RSM), an algebraic stress model (ASM), and the k-ε model. Attention was paid to numerical related errors, and an effort was made to minimize the effect of numerical diffusion. A major conclusion is that reliable predictions of swirling vortices that were originally in solid-body rotation can be made, if fine numerical grids are used in conjunction with the QUICK method and either the RSM or the ASM. In terms of the overall flow structure, no substantial differences between the RSM and ASM predictions were observed. In the solid-body-rotation flows analyzed, the transport of the Reynolds stresses was of little importance. © 1990.
引用
收藏
页码:225 / 235
页数:11
相关论文
共 29 条
[21]  
Sloan, Smith, Smooth, Modeling of swirl in turbulent flow systems, Progress in Energy and Combustion Science, 12, (1986)
[22]  
Spalding, A novel finite-difference formulation for differential expressions involving both first and second derivatives, Int. J. Num. Meths. Eng., 4, (1972)
[23]  
Raithby, A critical evaluation of upstream differencing applied to problems involving fluid flow, Computer Methods in Applied Mechanics and Engineering, 9, (1976)
[24]  
Shyy, Correa, AIAA paper No. 85–0400, (1985)
[25]  
So, Lai, Hwang, Yoo, Low-Reynolds-number modeling of flows over a backward facing step, J. Appl. Math. and Physics, 39, (1988)
[26]  
Escudier, Keller, Recirculation in swirling flow: A manifestation of vortex breakdown, AIAA J., 23, pp. 111-116, (1985)
[27]  
Batchelor, Introduction to Fluid Dynamics, (1985)
[28]  
Bejamin, Theory of the vortex breakdown phenomenon, Journal of Fluid Mechanics, 14, pp. 593-628, (1962)
[29]  
Weber, Boysan, Swithenbank, Roberts, Computations of near field aerodynamics of swirling expanding flows, Proc. 21st Symp. (Int.) on Combustion, pp. 1435-1443, (1986)