Detailed characteristics of drop-laden mixing layers: Large eddy simulation predictions compared to direct numerical simulation

被引:11
|
作者
Okong'o, Nora [1 ]
Leboissetier, Anthony [1 ]
Bellan, Josette [1 ]
机构
[1] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
关键词
D O I
10.1063/1.2990758
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Results are compared from direct numerical simulation (DNS) and large eddy simulation (LES) of a temporal mixing layer laden with evaporating drops to assess the ability of LES to reproduce detailed characteristics of DNS. The LES used computational drops, each of which represented eight physical drops, and a reduced flow field resolution using a grid spacing four times larger than that of the DNS. The LES also used models for the filtered source terms, which express the coupling of the drops with the flow, and for the unresolved subgrid-scale (SGS) fluxes of species mass, momentum, and enthalpy. The LESs were conducted using one of three different SGS-flux models: dynamic-coefficient gradient (GRD), dynamic-coefficient Smagorinsky (SMD), and constant-coefficient scale similarity (SSC). The comparison of the LES with the filtered-and-coarsened (FC) DNS considered detailed aspects of the flow that are of interest in ignition or full combustion. All LESs captured the largest-scale vortex, the global amount of vapor emanating from the drops, and the overall size distribution of the drops. All LESs tended to underpredict the global amount of irreversible entropy production (dissipation). The SMD model was found unable to capture either the global or local vorticity variation and had minimal small-scale activity in dynamic and thermodynamic variables compared to the FC-DNS. The SMD model was also deficient in predicting the spatial distribution of drops and of the dissipation. In contrast, the GRD and SSC models did mimic the small-scale activity of the FC-DNS and the spatial distribution of drops and of the dissipation. Therefore, the GRD and SSC models are recommended, while the SMD model seems inappropriate for combustion or other problems where the local activity must be predicted. (C) 2008 American Institute of Physics. [DOI: 10.1063/1.2990758]
引用
收藏
页数:16
相关论文
共 50 条
  • [31] Modeling of Cube Array Roughness: RANS, Large Eddy Simulation, and Direct Numerical Simulation
    Altland, Samuel
    Xu, Haosen H. A.
    Yang, Xiang I. A.
    Kunz, Robert
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2022, 144 (06):
  • [32] Direct-Numerical and Large-Eddy Simulations of the Subcritical and Supercritical Mixing Layers
    Ghannadi, Shooka Karimpour
    Chu, Vincent H.
    PROCEEDINGS OF THE 35TH IAHR WORLD CONGRESS, VOLS III AND IV, 2013,
  • [33] Direct numerical simulation of incompressible turbulent boundary layers and planar jets at high Reynolds numbers initialized with implicit large eddy simulation
    Watanabe, Tomoaki
    Zhang, Xinxian
    Nagata, Koji
    COMPUTERS & FLUIDS, 2019, 194
  • [34] Direct numerical simulation of particle-laden turbulent boundary layers without and with combustion
    Wang, Zhuo
    Wang, Haiou
    Luo, Kun
    Fan, Jianren
    PHYSICS OF FLUIDS, 2020, 32 (10)
  • [35] Direct numerical and large-eddy simulation of trefoil knotted vortices
    Zhao, Xinran
    Yu, Zongxin
    Chapelier, Jean-Baptiste
    Scalo, Carlo
    JOURNAL OF FLUID MECHANICS, 2021, 910
  • [36] Boundary layer transition over a foil using direct numerical simulation and large eddy simulation
    Smith, T. A.
    Ventikos, Y.
    PHYSICS OF FLUIDS, 2019, 31 (12)
  • [37] A priori direct numerical simulation assessment of MILD combustion modelling in the context of large eddy simulation
    Awad, Hazem S. A. M.
    Abo-Amsha, Khalil
    Chakraborty, Nilanjan
    FUEL, 2024, 362
  • [38] Direct Numerical Simulation and Large Eddy Simulation of Laminar Separation Bubbles at Moderate Reynolds Numbers
    Cadieux, Francois
    Domaradzki, Julian A.
    Sayadi, Taraneh
    Bose, Sanjeeb
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2014, 136 (06):
  • [39] Direct numerical simulation and large-eddy simulation of stationary buoyancy-driven turbulence
    Chung, D.
    Pullin, D. I.
    JOURNAL OF FLUID MECHANICS, 2010, 643 : 279 - 308