Numerical simulation of turbulent flow in an eccentric channel

被引:4
|
作者
Candela, Diana Sandoval [1 ]
Gomes, Thiago Ferreira [1 ]
Goulart, J. N., V [1 ]
Mota Anflor, Carla Tatiana [1 ]
机构
[1] Univ Brasilia, Grp Expt & Computat Mech GMEC, POB 8114, BR-72444240 Gama, DF, Brazil
关键词
Eccentric channel; Annular passages; Numerical simulation; Turbulent flow; DES-SST; Hybrid model; HEAT-TRANSFER; RECTANGULAR CHANNEL; GAP;
D O I
10.1016/j.euromechflu.2020.04.003
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The aim of this work is to perform a numerical simulation of the turbulent flow in an eccentric channel for a Reynolds number Re-Dh = 7300. The Reynolds number is based on the bulk velocity, U-Bulk, the hydraulic-diameter, D-h, and the kinematic viscosity, nu. To achieve this goal, a hybrid RANS/LES turbulence model called DES-SST is used. In this formulation, special functions are computed to convert the model from RANS close to the walls to LES in more remote regions. Besides the Reynolds number, the main dimensionless parameter related to the geometry involves the narrow gap between the outer and inner walls of the pipes and their diameters, D and d, respectively. These geometric parameters are related to the eccentricity, e, and the d/D ratio. Both of these parameters were kept constant at 0.80 and 0.50, respectively, throughout the work, as the channel's length, L = 1500 mm. The numerical results are compared with experimental outcomes for a water channel with the same Reynolds number using Ply measurements. The hybrid scheme was able to capture the onset of gap instability, short after the channel's inlet. Furthermore, the mass flow distribution along the channel and the flow velocity patterns were also successfully predicted by the numerical code. The Strouhal number was found to be in fair agreement with the experimental result. The large-scale structures were found to spread over the whole cross-section. The main frequency produced by the oscillatory motion in the tight gap was seen to be twice as high as that found in the lateral subchannel. (C) 2020 Elsevier Masson SAS. All rights reserved.
引用
收藏
页码:86 / 98
页数:13
相关论文
共 50 条
  • [1] Numerical simulation of pulsating turbulent channel flow
    Scotti, A
    Piomelli, U
    PHYSICS OF FLUIDS, 2001, 13 (05) : 1367 - 1384
  • [2] Numerical simulation of a turbulent channel flow with an acoustic liner
    Sebastian, Robin
    Marx, David
    Fortune, Veronique
    JOURNAL OF SOUND AND VIBRATION, 2019, 456 : 306 - 330
  • [3] Numerical simulation of turbulent flow in open channel with groynes
    Koutrouveli, Th. I.
    Fourniotis, N. Th.
    Demetracopoulos, A. C.
    Dimas, A. A.
    RIVER FLOW 2014, 2014, : 659 - 665
  • [4] Numerical simulation of reciprocating turbulent flow in a plane channel
    Di Liberto, Massimiliano
    Ciofalo, Michele
    PHYSICS OF FLUIDS, 2009, 21 (09)
  • [5] Direct numerical simulation of turbulent channel flow with bubbles
    Xu, J
    Dong, SC
    Maxey, MR
    Karniadakis, GE
    CURRENT TRENDS IN SCIENTIFIC COMPUTING, 2003, 329 : 347 - 354
  • [6] Numerical simulation of subcooled boiling in a turbulent channel flow
    Khalij, M
    Moissette, S
    Gardin, P
    Borean, JL
    Oesterlé, B
    PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2006, 6 (1-3): : 179 - 186
  • [7] Direct numerical simulation of turbulent flow in a wavy channel
    Ohta, T
    Miyake, Y
    Kajishima, T
    JSME INTERNATIONAL JOURNAL SERIES B-FLUIDS AND THERMAL ENGINEERING, 1998, 41 (02) : 447 - 453
  • [8] Numerical Simulation of Turbulent Flow in Eccentric Co-Rotating Heat Transfer
    Kaewbumrung, Mongkol
    Charoenloedmongkhon, Akapak
    FLUIDS, 2022, 7 (04)
  • [9] Turbulent supersonic channel flow: Direct numerical simulation and modeling
    Heinz, Stefan
    AIAA JOURNAL, 2006, 44 (12) : 3040 - 3050
  • [10] Numerical simulation of a turbulent flow in a channel with surface mounted cubes
    Verstappen, RWCP
    Veldman, AEP
    APPLIED SCIENTIFIC RESEARCH, 1998, 59 (04): : 395 - 408