Numerical Investigation of the Influence of the Coolant's Prandtl Molecular Numbers and the Permeability of the Pipe Wall on Turbulent Heat Transfer

被引:4
作者
Lushchik, V. G. [1 ]
Makarova, M. S. [1 ]
Popovich, S. S. [1 ]
机构
[1] Moscow MV Lomonosov State Univ, Res Inst Mech, Moscow 119192, Russia
基金
俄罗斯科学基金会;
关键词
flow in a pipe; heat transfer; turbulence model; permeable wall; gas suction; molecular Prandtl number; pressure gradient; Reynolds analogy factor; FORCED-CONVECTION; BINARY-MIXTURES; BOUNDARY-LAYER; MASS-TRANSFER; CHANNEL FLOW; NOBLE-GASES; SIMULATION; REYNOLDS; RESPECT; SUCTION;
D O I
10.1134/S0040601523120091
中图分类号
O414.1 [热力学];
学科分类号
摘要
A technique for modeling turbulent flow in a channel with impermeable and permeable walls in the presence of heat supply to the wall is proposed. To close the equations of the boundary layer, a three-parameter differential model of shear turbulence is used, which is supplemented by a transfer equation for a turbulent heat flux. Calculations are carried out for a developed turbulent flow in a round pipe with impermeable and permeable walls for air and binary gas mixtures with a low molecular Prandtl number with parameters corresponding to those in earlier experiments. The results of studies on the effect of the Prandtl number on heat transfer in a pipe with impermeable walls for a coolant with constant physical properties are consistent with the experimental data and empirical dependences of W.M. Kays and B.S. Petukhov for the Nusselt number in the range of Prandtl numbers of 0.2-0.7. It is shown that a positive pressure gradient arising in a pipe under strong gas suction leads to a violation of the similarity of the velocity and temperature profiles and, as a consequence, to a violation of the Reynolds analogy. The use of the transport equation for a turbulent heat flux makes it possible to take into account the complex dependence of the turbulent Prandtl number on the molecular Prandtl number in the viscous sublayer and in the logarithmic boundary layer. The influence of the variability of thermophysical properties and the turbulent Prandtl number on the characteristics of heat transfer in a pipe is estimated. Thus, the difference between the Nu number determined under the assumption of a constant turbulent Prandtl number and the results obtained in calculations using the equation for turbulent heat flux increases with a decrease in the molecular Prandtl number and an increase in the intensity of gas suction.
引用
收藏
页码:1029 / 1040
页数:12
相关论文
共 50 条
[21]   Numerical investigation of the effect of Prandtl number on heat transfer in a dimpled-channel flow [J].
Sato, Norikazu ;
Inagaki, Masahide ;
Kaneda, Kenji ;
Horinouchi, Nariaki ;
Ota, Aun .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2017, 68 :139-150
[22]   Large eddy simulation of turbulent open channel flow with heat transfer at high Prandtl numbers [J].
L. Wang ;
Y.-H. Dong ;
X.-Y. Lu .
Acta Mechanica, 2004, 170 :227-246
[23]   The influence of a magnetic field on turbulent heat transfer of a high Prandtl number fluid [J].
Nakaharai, H. ;
Takeuchi, J. ;
Yokomine, T. ;
Kunugi, T. ;
Satake, S. ;
Morley, N. B. ;
Abdou, M. A. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2007, 32 (01) :23-28
[24]   Numerical investigation of turbulent forced convection heat transfer in pillow plates [J].
Piper, M. ;
Zibart, A. ;
Tran, J. M. ;
Kenig, E. Y. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 94 :516-527
[25]   Numerical predictions of turbulent heat transfer for air flow in rotating pipe [J].
Ould-Rouiss, M. ;
Dries, A. ;
Mazouz, A. .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2010, 31 (04) :507-517
[26]   Numerical study of turbulent heat transfer in annular pipe with sudden contraction [J].
Togun, Hussein ;
Abdulrazzaq, Tuqa ;
Kazi, S. N. ;
Badarudin, A. ;
Ariffin, M. K. A. .
4TH MECHANICAL AND MANUFACTURING ENGINEERING, PTS 1 AND 2, 2014, 465-466 :461-+
[27]   Investigation of hydraulic resistance and heat transfer in the flow of HE-XE mixture with a small Prandtl number in a quasi-triangular pipe [J].
Makarov, M. S. ;
Vitovsky, O. V. ;
Naumkin, V. S. ;
Lebeda, K. S. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2022, 199
[28]   Numerical investigation on transient and steady phase change heat transfer in the evaporator of a loop heat pipe [J].
Su, Qian ;
Chang, Shinan ;
Yang, Chen .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2021, 179
[29]   NUMERICAL INVESTIGATION OF EFFECT OF TURBULATOR ON HEAT TRANSFER IN PIPE FLOWS [J].
Kahraman, Nafiz ;
Sekmen, Ufuk ;
Ceper, Bilge ;
Akansu, S. Orhan .
ISI BILIMI VE TEKNIGI DERGISI-JOURNAL OF THERMAL SCIENCE AND TECHNOLOGY, 2008, 28 (02) :51-59
[30]   A numerical investigation of developing flow and heat transfer in a curved pipe [J].
Nobari, M. R. H. ;
Amani, E. .
INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2009, 19 (6-7) :847-873