A modeling approach to transitional channel flow

被引:6
|
作者
Sahan, RA [1 ]
Gunes, H [1 ]
Liakopoulos, A [1 ]
机构
[1] Lehigh Univ, Dept Mech Engn & Mech, Bethlehem, PA 18015 USA
关键词
D O I
10.1016/S0045-7930(97)00016-9
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Low-dimensional dynamical models of transitional flow in a periodically grooved channel are numerically obtained. The governing partial differential equations (continuity and Navier-Stokes equations) with appropriate boundary conditions are solved by a spectral element method for Reynolds number Re = 430. The method of empirical eigenfunctions (proper orthogonal decomposition) is then used to extract the most energetic velocity eigenmodes, enabling us to represent the velocity field in an optimal way. The eigenfunctions enable us to identify the, spatio-temporal (coherent) structures of the flow as travelling waves, and to explain the related flow dynamics. Using the computed eigenfunctions as basis functions in a truncated series representation of the velocity field, low-dimensional models are obtained by Galerkin projection. The reduced systems, consisting of few non-linear ordinary differential equations, are solved using a fourth-order Runge-Kutta method. It is found that the temporal evolution of the most energetic modes calculated using the reduced models are in good agreement with the full model results. For the modes of lesser energy, low-dimensional models predict typically slightly larger amplitude oscillations than the full model. For the slightly supercritical flow at hand, reduced models require at least four modes (capturing about 99% of the total flow energy). This is the smallest set of modes capable of predicting stable, self-sustained oscillations with correct amplitude and frequency. POD-based low-dimensional dynamical models considerably reduce the computational time and power required to simulate transitional Open flow systems. (C) 1998 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:121 / 136
页数:16
相关论文
共 50 条
  • [41] The effect of synthetic jets on heat fluxes in a transitional channel with flow separation
    Belova, V. G.
    Stepanov, V. A.
    Chirkov, A. Yu
    CONFERENCE OF YOUNG SCIENTISTS IN MECHANICS, 2018, 1129
  • [42] Modeling ground water flow through channel networks in rock using a stochastic approach
    Bruines, PA
    Egger, P
    Contribution of Rock Mechanics to the New Century, Vols 1 and 2, 2004, : 445 - 450
  • [43] Anisotropic turbulence modeling for natural channel flow: A numerical approach with finite element method
    Silva, R. N.
    Camargo, F. R. T.
    Mendes, R. C. F.
    Bertolina, R. M.
    Nunes, M. M.
    Oliveira, T. F.
    Brasil Junior, A. C. P.
    FLOW MEASUREMENT AND INSTRUMENTATION, 2024, 98
  • [44] Drag reduction in transitional linearized channel flow using distributed control
    Baker, J
    Christofides, PD
    INTERNATIONAL JOURNAL OF CONTROL, 2002, 75 (15) : 1213 - 1218
  • [45] EXPERIMENTAL AND THEORETICAL-STUDY OF TRANSITIONAL TURBULENT PULSATILE FLOW IN A CHANNEL
    THOMAS, LC
    MIN, J
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1976, 43 (04): : 559 - 563
  • [46] EXPERIMENTAL AND THEORETICAL STUDY OF TRANSITIONAL TURBULENT PULSATILE FLOW IN A CHANNEL.
    Thomas, L.C.
    Min, J.
    1600,
  • [47] Reduced dynamical models of nonisothermal transitional grooved-channel flow
    Sahan, RA
    Liakopoulos, A
    Gunes, H
    PHYSICS OF FLUIDS, 1997, 9 (03) : 551 - 565
  • [48] Influence of forced flow pulsations on heat transfer behind a rib in a channel in transitional flow regimes
    Molochnikov, V. M.
    Mazo, A. B.
    Okhotnikov, D., I
    Kalinin, E., I
    Malyukov, A., V
    3RD ALL-RUSSIAN SCIENTIFIC CONFERENCE THERMOPHYSICS AND PHYSICAL HYDRODYNAMICS WITH THE SCHOOL FOR YOUNG SCIENTISTS, 2018, 1128
  • [49] Channel modeling for UWOC: a simulation approach
    Manimegalai, C. T.
    Bhatta, Hemanga
    Thakur, Himanshu
    Iliyas, Afaan
    JOURNAL OF OPTICS-INDIA, 2022, 51 (04): : 810 - 818
  • [50] An orthogonalization approach for communication channel modeling
    Alcocer-Ochoa, A
    Kontorovitch, VY
    Parra-Michel, R
    VTC2005-FALL: 2005 IEEE 62ND VEHICULAR TECHNOLOGY CONFERENCE, 1-4, PROCEEDINGS, 2005, : 1079 - 1083