Numerical investigation of turbulent flow and heat transfer in flat tube

被引:33
|
作者
Pourdel, Hadi [1 ]
Afrouzi, Hamid Hassanzadeh [2 ]
Akbari, Omid Ali [3 ]
Miansari, Mehdi [1 ]
Toghraie, Davood [4 ]
Marzban, Ali [5 ]
Koveiti, Ali [4 ]
机构
[1] Islamic Azad Univ, Qaemshahr Branch, Dept Mech Engn, Qaemshahr, Iran
[2] Babol Noshirvani Univ Technol, Dept Mech Engn, Babol Sar, Iran
[3] Islamic Azad Univ, Khomeinishahr Branch, Young Researchers & Elite Club, Khomeinishahr, Iran
[4] Islamic Azad Univ, Khomeinishahr Branch, Dept Mech Engn, Khomeinishahr, Iran
[5] Islamic Azad Univ, Aligoudarz Branch, Dept Mech Engn, Aligoudarz, Iran
关键词
Turbulent flow; Flat tube; Dimple; Numerical simulation; LID-DRIVEN CAVITY; PRESSURE-DROP; MIXED CONVECTION; WATER-AL2O3; NANOFLUID; TWISTED-TAPE; LAMINAR; MICROCHANNEL; EXCHANGER; RIB; JET;
D O I
10.1007/s10973-018-7529-8
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present study, the fluid flow and heat transfer were numerically investigated in a flat tube under the constant heat flux using finite volume method and SIMPLEC algorithm. Also in this study, the range of Reynolds number is 5000-20,000, the range of dimensionless pitch (PN = PD/DL) is 1-2.33, and the range of dimensionless depth (DN = DD/DL) is 0.233-0.433. The use of second-order discretization for solving the governing equations on flow has made acceptable agreement between result between empirical and numerical results. The presence of dimples inside the channel, due to the creation of significant changes in flow physics and temperature field, considerably affects the flow and heat transfer parameters. The results indicate that by increasing Reynolds number, the convection heat transfer (Nusselt number) and the friction factor rise. Also, by decreasing the dimensionless pitch and increasing the dimensionless depth of dimple, Nusselt number and friction factor increase. The changes of Nusselt number are approximately related to the changes of dimensionless pitch and dimensionless depth of dimple, while the changes of friction factor are greatly related to the changes of dimensionless depth than the changes of dimensionless pitch. Based on the figures of average Nusselt number, using dimple in higher Reynolds numbers and constant DN ratio has a positive effect on Nusselt number increase. The main reason is the creation of stronger vortexes and better mixture of flow in higher Reynolds numbers. Hence, in average Nusselt number curves and in each constant DN ratio, the difference between graphs in Reynolds numbers of 2000 and 15,000 is higher than Reynolds numbers of 5000 and 10,000.
引用
收藏
页码:3471 / 3483
页数:13
相关论文
共 50 条
  • [21] Numerical simulation and experimental validation of flow and heat transfer in flat-tube heat exchangers
    Yu Jiuyang
    Xia Wenwu
    Feng Xingkui
    PROCEEDINGS OF THE ASME/JSME THERMAL ENGINEERING SUMMER HEAT TRANSFER CONFERENCE 2007, VOL 1, 2007, : 539 - 546
  • [22] Investigation on turbulent flow and heat transfer characteristics and technical economy of corrugated tube
    Sun, Ming
    Zeng, Min
    APPLIED THERMAL ENGINEERING, 2018, 129 : 1 - 11
  • [23] Numerical investigation of flow and heat transfer in enhanced tube with slot dimples
    Zhang, Liang
    Xie, Shuai
    Liang, Zheng
    Zhang, Jie
    Wang, Yulin
    Chen, Wei
    Kong, Chunyan
    HEAT AND MASS TRANSFER, 2019, 55 (12) : 3697 - 3709
  • [24] Numerical investigation of flow and heat transfer in enhanced tube with slot dimples
    Liang Zhang
    Shuai Xie
    Zheng Liang
    Jie Zhang
    Yulin Wang
    Wei Chen
    Chunyan Kong
    Heat and Mass Transfer, 2019, 55 : 3697 - 3709
  • [25] Numerical investigation on flow and heat transfer in dimpled tube with teardrop dimples
    Xie, Shuai
    Liang, Zheng
    Zhang, Jie
    Zhang, Liang
    Wang, Yulin
    Ding, Hu
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 131 : 713 - 723
  • [26] Experimental investigation of turbulent heat transfer by counter and co-swirling flow in a flat tube fitted with twin twisted tapes
    Abdolbaqi, M. Kh.
    Azmi, W. H.
    Mamat, Rizalman
    Mohamed, N. M. Z. N.
    Najafi, G.
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2016, 75 : 295 - 302
  • [27] Numerical analysis of flow and heat transfer outside the flat wave-finned tube
    School of Energy and Power Engineering, Key Laboratory of Condition Monitoring and Control for Power Plant Equipment, North China Electric Power University, Beijing 102206, China
    不详
    Kung Cheng Je Wu Li Hsueh Pao, 2007, 1 (122-124):
  • [28] Numerical investigation for flow and heat transfer in longitudinal-flow tube bundle of shell-and-tube heat exchanger
    Liu, Z. C.
    Liu, W.
    Wang, Y. S.
    Huang, S. Y.
    TURBULENCE, HEAT AND MASS TRANSFER 6, 2009, : 955 - 958
  • [29] A numerical study of heat transfer and turbulent flow of carbon dioxide in a tube at supercritical pressure
    E. P. Valueva
    E. N. Kulagin
    Thermal Engineering, 2012, 59 (1) : 40 - 47
  • [30] Numerical simulation of heat transfer under conditions of turbulent separated flow in tube banks
    Isaev, SA
    Baranov, PA
    Kudryavtsev, NA
    HIGH TEMPERATURE, 2004, 42 (02) : 290 - 301