Detailed visualization experiments on the start-up process and stable operation of pulsating heat pipes: Effects of internal diameter

被引:8
作者
Cheng, Po-Shen [1 ]
Wong, Shwin-Chung [1 ]
机构
[1] Natl Tsing Hua Univ, Dept Power Mech Engn, Hsinchu 300, Taiwan
关键词
Pulsating heat pipe; Visualization experiment; Geyser boiling; Start -up period; THERMAL PERFORMANCE; WORKING FLUIDS; FLOW; MECHANISM; PART;
D O I
10.1016/j.ijheatfluidflow.2024.109325
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present work, detailed flow characteristics in glass pulsating heat pipes (PHPs) are pioneeringly organized into category charts based on careful visualization during the start-up and the steady operational periods, respectively. Two IDs of 6 mm and 3 mm are studied and compared. The larger ID of 6 mm weakens the effect of surface tension that all the water sinks to the bottom after the filling. Whereas, sections of liquid slugs are formed initially in the 3 mm-ID PHP. Pulsation is observed to operate on and off under low values of heat input (Qin), and gradually develop into steady oscillation with increasing Qin. In the low-Qin start-up period, different pulsation motions exist in separate tubes, which is associated with the initial distribution of liquid slugs. Geyser pulsation, which tends to occur for ultra-long liquid slugs, recurs irregularly in the 6 mm-ID PHP. For the 3 mm-ID PHP, the smaller ID and the lighter weight of working fluid intensify the surface tension effect against gravity that the liquid slug trains can be easily driven around, preventing the geyser pulsation. During the operation period, in either the 6 mm-ID or the 3 mm-ID PHP, continuous up-and-down pulsations switch between the liquid and vapor states with increasing Qin. The critical Qin for the operational period with continuous pulsation is related to the filling ratio: 70 W for FR = 35 %, 60 W for FR = 50 %, and 40 W for FR = 65 % in the 6 mm-ID PHP.
引用
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页数:19
相关论文
共 35 条
  • [1] Akachi H., 1996, PROC 5 INT HEAT PIPE, P208, DOI DOI 10.12691/AJME-4-6-1
  • [2] Bejan A., 2013, Convection Heat Transfer
  • [3] Closed loop pulsating heat pipes - Part A: parametric experimental investigations
    Charoensawan, P
    Khandekar, S
    Groll, M
    Terdtoon, P
    [J]. APPLIED THERMAL ENGINEERING, 2003, 23 (16) : 2009 - 2020
  • [4] Detailed visualization experiments on the start-up process and stable operation of double-layered pulsating heat pipes under vertical and horizontal orientations
    Cheng, Po-Shen
    Wong, Shwin-Chung
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2024, 231
  • [5] Performance tests for 3-D Fin-and-Tube heat pipe modified from commercial heat exchanger product for various working fluids
    Cheng, Po-Shen
    Wong, Shwin-Chung
    Wu, Shih-Kuo
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2022, 194
  • [6] Combination study of operation characteristics and heat transfer mechanism for pulsating heat pipe
    Cui, Xiaoyu
    Zhu, Yue
    Li, Zhihua
    Shun, Shende
    [J]. APPLIED THERMAL ENGINEERING, 2014, 65 (1-2) : 394 - 402
  • [7] Flower Shaped Oscillating Heat Pipe at the thermosyphon condition: Performance at different rotational speeds, filling ratios, and heat supplies
    Czajkowski, Cezary
    Nowak, Andrzej I.
    Ochman, Agnieszka
    Pietrowicz, Slawomir
    [J]. APPLIED THERMAL ENGINEERING, 2022, 212
  • [8] Delil A., 2001, SAE Trans., P28
  • [9] Dobson R.T., 1999, Lumped Parameter Analysis of Closed and Open Oscillatory Heat Pipes, P137
  • [10] Experimental Study on a Hydrogen Closed Loop Pulsating Heat Pipe with Different Adiabatic Lengths
    Gan, Zhihua
    Sun, Xiao
    Jiao, Bo
    Han, Dongyang
    Deng, Haoren
    Wang, Shunhao
    Pfotenhauer, John M.
    [J]. HEAT TRANSFER ENGINEERING, 2019, 40 (3-4) : 205 - 214