Effect of chevron angle on the thermofluids performance of shell-and-plate heat exchangers - A numerical approach

被引:2
作者
Zhao, Yi [1 ]
Liu, Hai-yong [1 ]
Zhang, Li [1 ]
Wang, Chi-Chuan [2 ]
机构
[1] Northwestern Polytech Univ, Sch Power & Energy, Xian 710072, Shaanxi, Peoples R China
[2] Natl Yang Ming Chiao Tung Univ, Dept Mech Engn, Hsinchu 300, Taiwan
关键词
Shell-and-plate heat exchanger; Chevron angle; Nusselt number; Friction factor; Mal; -distribution; FLOW;
D O I
10.1016/j.applthermaleng.2023.122061
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study conducts a detailed numerical study upon the effect of chevron angle on the thermofluids characteristics of shell-and-plate heat exchangers. The plate diameter is 215 mm and the chevron angles (beta) are 30 degrees, 45 degrees, 60 degrees, and 75 degrees. Simulations are performed with Reynolds number ranging from 200 to 1000. The heat transfer and frictional performance are termed as Nusselt number (Nu) and friction factor (f), and results for both shell and plate side are reported. The Nusselt number and friction factor in the shell side are increased with the rise of chevron angle. For the same inlet flowrate, the pressure profile in the shell side changes significantly with the chevron angle, from uniform (beta = 30 degrees) to concave (beta = 45 degrees similar to 60 degrees) and finally to slightly convex (beta = 75 degrees) while the pressure profile in the plate side is always convex. In the plate side, the Nusselt number increases with the rise of chevron angle. But the lowest friction factor occurs when beta = 45 degrees due to a better flow distribution. The heat transfer performance in the shell side is superior to the plate side due to the presence of the inlet/outlet manifold in association with the chevron angles. Based on the performance evaluation criteria, it is found that the best overall performance occurs at a chevron angle of 45 degrees. This angle is applicable in both shell side and plate side. For the shell side, the index is about 25 %, 60 %, and 340 % higher than those of beta = 75 degrees, 60 degrees, and 30 degrees, respectively at a Reynolds number of 300 at the shell side. For the plate side, the index amid beta = 75 degrees, 60 degrees, and 45 degrees is roughly the same when the Reynolds number is lower than 500, and the index is about 220 % for beta = 45 degrees when compared to beta = 30 degrees at a Reynolds number of 300.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Better thermal calculations using modified generalized leveque equations for chevron plate heat exchangers
    Abu-Khader, Mazen M.
    [J]. INTERNATIONAL JOURNAL OF GREEN ENERGY, 2007, 4 (04) : 351 - 366
  • [32] Influence of grooves geometric parameters on the nanofluid flow and thermal efficiency of Chevron plate heat exchangers
    Ardalan, Mostafa Valizadeh
    Alizadeh, Rasool
    Ameri, Abolhasan
    Alizadeh, Ahmad
    Jafari, Farhad Mohammad
    [J]. ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2020,
  • [33] Friction factors of power-law fluids in chevron-type plate heat exchangers
    Fernandes, Carla S.
    Dias, Ricardo P.
    Nobrega, Joao M.
    Maia, Joao M.
    [J]. JOURNAL OF FOOD ENGINEERING, 2008, 89 (04) : 441 - 447
  • [34] NUMERICAL STUDY OF THE SHELL-SIDE PERFORMANCE OF THE TRISECTION BAFFLED AND QUARTERN BAFFLED HEAT EXCHANGERS
    Sun, Yongli
    Li, Feiyang
    Zhang, Luhong
    Jiang, Bin
    Xiao, Xiaoming
    [J]. HEAT TRANSFER RESEARCH, 2014, 45 (08) : 701 - 723
  • [35] Experimental and Numerical Investigation on Shell-side Performance of Multilayer Spiral-Wound Heat Exchangers
    Lu, Xing
    Du, Xueping
    Zhang, Sen
    Zeng, Min
    Wang, Qiuwang
    [J]. 16TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION (PRES'13), 2013, 35 : 445 - 450
  • [36] An experimental study on single phase convection heat transfer and pressure drop in two brazed plate heat exchangers with different chevron shapes and hydraulic diameters
    Kim, Man Bae
    Park, Chang Yong
    [J]. JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2017, 31 (05) : 2559 - 2571
  • [37] Numerical comparison of shell-side performance for shell and tube heat exchangers with trefoil-hole, helical and segmental baffles
    El Maakoul, Anas
    Laknizi, Azzedine
    Saadeddine, Said
    El Metoui, Mustapha
    Zaite, Abdelkabir
    Meziane, Mohamed
    Ben Abdellah, Abdelatif
    [J]. APPLIED THERMAL ENGINEERING, 2016, 109 : 175 - 185
  • [38] Numerical study on shell and tube heat exchangers with different baffles configurations
    Yousef, Ahmed
    Saim, Rachid
    Oztop, Hakan F. F.
    [J]. INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2023, 33 (09) : 3255 - 3271
  • [39] Numerical simulation of new combined plate heat exchangers and distribution region
    Wen J.
    Zhang J.
    Zhao L.
    Li D.
    [J]. Zhao, Li (jons@tju.edu.cn), 1600, Chinese Mechanical Engineering Society (52): : 150 - 156
  • [40] EXPERIMENTAL AND NUMERICAL STUDIES ON SHELL-SIDE PERFORMANCE OF THREE DIFFERENT SHELL-AND-TUBE HEAT EXCHANGERS WITH HELICAL BAFFLES
    Chen, Gui-Dong
    Zeng, Min
    Wang, Qiu-Wang
    [J]. JOURNAL OF ENHANCED HEAT TRANSFER, 2011, 18 (05) : 449 - 463