NUMERICAL STUDY ON THE NATURALLY CAPTURED AIR VOLUME OF OUTSIDE CABIN HEAT EXCHANGER FOR WIND POWER GENERATION

被引:0
作者
Zhou, Nianyong [1 ]
Guo, Yixing [1 ]
Liu, Wenbo [1 ]
Feng, Hao [1 ]
Peng, Haoping [1 ]
Lei, Yun [1 ]
Deng, Song [1 ]
Zhao, Lei [2 ]
机构
[1] Changzhou Univ, Sch Petr Engn, Changzhou, Jiangsu, Peoples R China
[2] Avic Xinxiang Aviat Ind Grp Co Ltd, Xinxiang, Henan, Peoples R China
来源
THERMAL SCIENCE | 2022年 / 26卷 / 06期
关键词
wind power generation; outside cabin heat exchanger; naturally air captured; porous media theory; PRESSURE-DROP; SIMULATION;
D O I
10.2298/TSCI220123066Z
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper, the outside cabin heat exchanger based on the porous media approach was established. The effects of altitude, viscous resistance coefficient, inertial resistance coefficient, and core thickness on the naturally captured air volume of the heat exchanger were investigated by numerical simulation. Results showed that the naturally captured air volume of the heat exchanger tends to be larger on both sides and smaller in the middle, and there is a quasi-linear increase proportional to the incoming wind velocity. With the increment of altitude, viscous resistance coefficient, and inertial resistance coefficient, the average naturally captured air volume of the heat exchangers shows a downward trend. The trend would be clear with the increment of the incoming wind velocity, nevertheless, the effect of core thickness is weak. In addition, the design values of the viscous resistance coefficient and the inertial resistance coefficient should be restricted in the order of 106 and below 500, respectively. Based on the weak effect of the naturally captured air volume of the heat exchanger, the thickness of the core can be appropriately increased to ensure the heat transfer area of the heat exchanger.
引用
收藏
页码:5069 / 5080
页数:12
相关论文
共 25 条
  • [1] Estimating pressure drop and Ergun/Forchheimer parameters of flow through packed bed of spheres with large particle diameters
    Amiri, Leyla
    Ghoreishi-Madiseh, Seyed Ali
    Hassani, Ferri P.
    Sasmito, Agus P.
    [J]. POWDER TECHNOLOGY, 2019, 356 : 310 - 324
  • [2] [Anonymous], 1974, HEAT EXCHANGER DESIG
  • [3] Numerical investigation of a compact tube heat exchanger for hypersonic pre-cooled aero-engine
    Ding, Wenhao
    Eri, Qitai
    Kong, Bo
    Zhang, Zhen
    [J]. APPLIED THERMAL ENGINEERING, 2020, 170 (170)
  • [4] Impact of velocities and geometry on flow components and heat transfer in plate heat exchangers
    Dovic, Damir
    Horvat, Ivan
    Filipovic, Petar
    [J]. APPLIED THERMAL ENGINEERING, 2021, 197
  • [5] Numerical simulation of a plate-fin heat exchanger with offset fins using porous media approach
    Du Juan
    Zhao Hai-Tao
    [J]. HEAT AND MASS TRANSFER, 2018, 54 (03) : 745 - 755
  • [6] Guo J. Z., 2016, SCI TECHNOLOGY ENG, V16, P58
  • [7] Air velocity effect on the performance of geothermal helicoidally water-air heat exchanger under El Oued climate, Algeria
    Hadjadj, Abdessamia
    Benhaoua, Boubaker
    Atia, Abdelmalek
    Khechekhouche, Abderrahmane
    Lebbihiat, Nacer
    Rouag, Amar
    [J]. THERMAL SCIENCE AND ENGINEERING PROGRESS, 2020, 20 (20)
  • [8] Enhancing heat transfer in the core flow by using porous medium insert in a tube
    Huang, Z. F.
    Nakayama, A.
    Yang, K.
    Yang, C.
    Liu, W.
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2010, 53 (5-6) : 1164 - 1174
  • [9] Isik E, 2021, HEAT TRANSF RES, V52, P1, DOI 10.1615/HeatTransRes.2021037920
  • [10] Compound porous media model for simulation of flat top U-tube compact heat exchanger
    Kim, Jaemin
    Sibilli, Thierry
    Ha, Man Yeong
    Kim, Kuisoon
    Yoon, Sang Youl
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 138 : 1029 - 1041