DNS of Turbulent Flows in Ducts with Complex Shape

被引:7
|
作者
Orlandi, Paolo [1 ]
Modesti, Davide [1 ]
Pirozzoli, Sergio [1 ]
机构
[1] Sapienza Univ Roma, Dipartimento Ingn Meccan & Aerosp, Via Eudossiana 16, I-00148 Rome, Italy
关键词
Turbulence; Direct numerical simulation; Ducts; DIRECT NUMERICAL-SIMULATION; CHANNEL FLOW; WALL TURBULENCE; ROUGHNESS; PIPE;
D O I
10.1007/s10494-018-9911-9
中图分类号
O414.1 [热力学];
学科分类号
摘要
We carry out Direct Numerical Simulation (DNS) of flows in closed straight ducts with complex peripheral shape. To perform the simulations the Navier-Stokes equations in cylindrical coordinates are discretized by a second-order finite difference scheme, and the immersed-boundary technique is used to resolve the flow close to walls of complex shape. The basic geometry is a circular pipe of radius R, with imposed sinusoidal perturbations of the type . Simulations by varying N (w) at fixed eta were performed to investigate the effect of the perturbation wavenumber. Additional simulations by fixing N (w) and varying eta also allow to investigate the influence of the amplitude of the wall corrugations. The modifications of the near-wall structures due to change in the shape of the walls are well depicted through contour plots of the radial component of the vorticity. The presence of geometrical disturbances anchors the structures at the locations where curvature changes, and the shape of the structures is strongly linked to the amplitude of the wall corrugation. Our interest is also in understanding the influence of the shape of the surface on wall friction. We were expecting some changes in the profile of the total stress with respect to that of the circular pipe, which instead were not found. This is a first indication that changes in the near-wall region do not affect the outer region, and that Townsend's similarity hypothesis holds.
引用
收藏
页码:1063 / 1079
页数:17
相关论文
共 50 条
  • [1] DNS of Turbulent Flows in Ducts with Complex Shape
    Paolo Orlandi
    Davide Modesti
    Sergio Pirozzoli
    Flow, Turbulence and Combustion, 2018, 100 : 1063 - 1079
  • [2] PIV and DNS analyses of viscoelastic turbulent flows behind a rectangular orifice
    Tsukahara, Takahiro
    Motozawa, Masaaki
    Tsurumi, Daisei
    Kawaguchi, Yasuo
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2013, 41 : 66 - 79
  • [3] DNS of Compressible Turbulent Flows
    Friedrich, Rainer
    Ghosh, Somnath
    DIRECT AND LARGE-EDDY SIMULATION VII, 2010, 13 : 553 - 563
  • [4] DNS of turbulent flow with hemispherical wall roughness
    Mishra, Anand V.
    Bolotnov, Igor A.
    JOURNAL OF TURBULENCE, 2015, 16 (03): : 225 - 249
  • [5] Transitional and turbulent flows in rectangular ducts: budgets and projection in principal mean strain axes
    Orlandi, Paolo
    Pirozzoli, Sergio
    JOURNAL OF TURBULENCE, 2020, 21 (5-6): : 286 - 310
  • [6] GPU-accelerated DNS of compressible turbulent flows
    Kim, Youngdae
    Ghosh, Debojyoti
    Constantinescu, Emil M.
    Balakrishnan, Ramesh
    COMPUTERS & FLUIDS, 2023, 251
  • [7] Asymptotic matching arguments and DNS for transpired turbulent flows
    Rempto, Milena J.
    Silva Freire, Atila P.
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2022, 44 (09)
  • [8] Turbulent flows in square ducts: physical insight and suggestions for turbulence modellers
    Orlandi, Paolo
    Pirozzoli, Sergio
    JOURNAL OF TURBULENCE, 2020, 21 (02): : 106 - 128
  • [9] Evaluation of a high-order discontinuous Galerkin method for the DNS of turbulent flows
    Chapelier, J. -B.
    Plata, M. de la Llave
    Renac, F.
    Lamballais, E.
    COMPUTERS & FLUIDS, 2014, 95 : 210 - 226
  • [10] The P-DNS Method for Turbulent Fluid Flows: An Overview
    Idelsohn, Sergio R.
    Gimenez, Juan M.
    Larreteguy, Axel E.
    Nigro, Norberto M.
    Sivori, Francisco M.
    Onate, Eugenio
    ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2024, 31 (02) : 973 - 1021