Turbulence and secondary motions in square duct flow

被引:120
作者
Pirozzoli, Sergio [1 ]
Modesti, Davide [2 ]
Orlandi, Paolo [1 ]
Grasso, Francesco [2 ]
机构
[1] Sapienza Univ Roma, Dipartimento Ingn Meccan & Aerosp, Via Eudossiana 18, I-00184 Rome, Italy
[2] CNAM Lab DynFluid, 151 Blvd Hop, F-75013 Paris, France
关键词
pipe flow boundary layer; turbulence simulation; turbulent boundary layers; DIRECT NUMERICAL-SIMULATION; VELOCITY DISTRIBUTION; SKIN FRICTION; CHANNEL FLOW; REYNOLDS;
D O I
10.1017/jfm.2018.66
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We study turbulent flows in pressure-driven ducts with square cross-section through direct numerical simulation in a wide enough range of Reynolds number to reach flow conditions which are representative of fully developed turbulence (Rey 1000). Numerical simulations are carried out over very long integration times to get adequate convergence of the flow statistics, and specifically to achieve high-fidelity representation of the secondary motions which arise. The intensity of the latter is found to be on the order of 1 %-2 % of the bulk velocity, and approximately unaffected by Reynolds number variation, at least in the range under scrutiny. The smallness of the mean convection terms in the streamwise vorticity equation points to a simple characterization of the secondary flows, which in the asymptotic high-Re regime are approximated with good accuracy by eigenfunctions of the Laplace operator, in the core part of the duct. Despite their effect of redistributing the wall shear stress along the duct perimeter, we find that secondary motions do not have a large influence on the bulk flow properties, and the streamwise velocity field can be characterized with good accuracy as resulting from the superposition of four flat walls in isolation. As a consequence, we find that parametrization based on the hydraulic diameter concept, and modifications thereof, are successful in predicting the duct friction coefficient.
引用
收藏
页码:631 / 655
页数:25
相关论文
共 50 条
[31]   Direct numerical simulation of turbulent flow in a spanwise rotating square duct at high rotation numbers [J].
Fang, Xingjun ;
Yang, Zixuan ;
Wang, Bing-Chen ;
Bergstrom, Donald J. .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2017, 63 :88-98
[32]   Reynolds number effect on turbulent secondary flow in a duct [J].
Kim, Myeongkyun ;
You, Donghyun .
JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2014, 28 (04) :1311-1318
[33]   Production and survival of early turbulence due to flow modulation at the duct inlet [J].
Bari, Md Ashfaqul ;
Muensch, Manuel ;
Jovanovic, Jovan ;
Delgado, Antonio .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2025, 114
[34]   Decay of turbulence in a liquid metal duct flow with transverse magnetic field [J].
Zikanov, Oleg ;
Krasnov, Dmitry ;
Boeck, Thomas ;
Sukoriansky, Semion .
JOURNAL OF FLUID MECHANICS, 2019, 867 :661-690
[35]   Investigation of the Effect of Inlet Turbulence and Reynolds Number on Developing Duct Flow [J].
Tuna, Burak A. ;
Yarusevych, Serhiy ;
Li, Xianguo ;
Ren, Yi ;
Shi, Fanghui .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2019, 141 (05)
[36]   Direct numerical simulation of turbulent flow and combined convective heat transfer in a square duct with axial rotation [J].
Yang, Xiang ;
Li, Zeng-Yao ;
Tao, Wen-Quan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2010, 53 (23-24) :5400-5410
[37]   Secondary Flow in Smooth and Rough Turbulent Circular Pipes: Turbulence Kinetic Energy Budgets [J].
Orlandi, Paolo ;
Pirozzoli, Sergio .
FLUIDS, 2021, 6 (12)
[38]   Contributions of very large-scale motions to turbulence statistics in open channel flows [J].
Duan, Yanchong ;
Chen, Qigang ;
Li, Danxun ;
Zhong, Qiang .
JOURNAL OF FLUID MECHANICS, 2020, 892
[39]   Transition to turbulence in rough plane Couette flow [J].
Gokul, S. ;
Narasimhamurthy, Vagesh D. .
JOURNAL OF FLUID MECHANICS, 2024, 1000
[40]   Influence of wall shear stress on the secondary flow in square ducts [J].
Doehring, A. ;
Kaller, T. ;
Schmidt, S. J. ;
Adams, N. A. .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2024, 105