Application of a k-ε Model to Heat Transfer in Impinging Flows

被引:1
|
作者
Merci, Bart [1 ]
De Langhe, Chris [1 ]
Lodefier, Koen [1 ]
Dick, Erik [1 ]
机构
[1] State Ghent Univ, Dept Flow Heat & Combust Mech, B-9000 Ghent, Belgium
关键词
local heat transfer; impinging jets; non-linear k-epsilon model;
D O I
10.1007/s11630-004-0010-y
中图分类号
O414.1 [热力学];
学科分类号
摘要
Local heat transfer is predicted in turbulent axisymmetric jets, impinging onto a flat plate. A non-linear k-epsilon model is used([1]), in which both the constitutive law for the turbulent stresses and the transport equation for the turbulent dissipation rate e have an important contribution in the improved heat transfer predictions. The shape of the Nusselt number profiles, expressing dimensionless heat transfer, as well as the stagnation point value, are well predicted for different distances between the nozzle exit and the plate. Accurate flow field predictions are the basis for good heat transfer predictions. For a fixed Reynolds number, the influence of the nozzle-plate distance is well captured. For a fixed distance, the influence of the Reynolds number is correctly reproduced. Comparisons are made to a low-Reynolds standard k-e model([2]) and the v(2)-f model([3]). A thorough discussion is found in([4]). Only a summary of those results is discussed here, while some new results are also presented.
引用
收藏
页码:62 / 66
页数:5
相关论文
共 50 条
  • [31] Heat transfer modelling in a rotating cavity using the SST k-ω turbulence model
    Wroblewski, W.
    Fraczek, D.
    [J]. ARCHIVES OF MECHANICS, 2014, 66 (05): : 343 - 364
  • [32] Turbulent Heat and Mass Transfer about a Cylinder through LRN k-ε Model
    Suresha, S. P.
    Reddy, G. Janardhana
    Basha, Hussain
    [J]. INDIAN JOURNAL OF PHYSICS, 2023, 97 (13) : 3985 - 4006
  • [33] Turbulent Heat and Mass Transfer about a Cylinder through LRN k-ε Model
    S. P. Suresha
    G Janardhana Reddy
    Hussain Basha
    [J]. Indian Journal of Physics, 2023, 97 : 3985 - 4006
  • [34] Quantification of parametric uncertainty in k-ω-γ transition model for hypersonic flow heat transfer
    Zhao, Yatian
    Liu, Hongkang
    Zhou, Qin
    Yan, Chao
    [J]. AEROSPACE SCIENCE AND TECHNOLOGY, 2020, 96
  • [35] Development and application of a multi-scale k-ε model for turbulent porous medium flows
    Kuwata, Yusuke
    Suga, Kazuhiko
    Sakurai, Yota
    [J]. INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2014, 49 : 135 - 150
  • [36] An improved k-ω turbulence model applied to recirculating flows
    Bredberg, J
    Peng, SH
    Davidson, L
    [J]. INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2002, 23 (06) : 731 - 743
  • [37] A (k-ε) turbulence closure model for plant canopy flows
    Hiraoka, H.
    Ohashi, M.
    [J]. JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2008, 96 (10-11) : 2139 - 2149
  • [38] On application of nonlinear k-ε models for internal combustion engine flows
    Bianchi, GM
    Cantore, G
    Parmeggiani, P
    Michelassi, V
    [J]. JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER-TRANSACTIONS OF THE ASME, 2002, 124 (03): : 668 - 677
  • [39] Heat transfer of impinging jet and ribbed-duct flows with system reciprocation
    Chang, SW
    Su, LM
    Yang, TL
    [J]. JOURNAL OF SHIP RESEARCH, 1999, 43 (02): : 107 - 120
  • [40] Simulations of tip vortex cavitation flows with nonlinear k-∈ model
    Wang, Benlong
    Liu, Zhihui
    Peng, Xiaoxing
    Liu, Dengcheng
    [J]. 9TH INTERNATIONAL SYMPOSIUM ON CAVITATION (CAV2015), 2015, 656