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BAI Yin, WANG Qi, WANG Changbin. Experimental Study on Flow and Heat Transfer of Ice Slurry in a Horizontal Tube[J]. Safety in Coal Mines, 2018, 49(12): 41-44,49.
Citation: BAI Yin, WANG Qi, WANG Changbin. Experimental Study on Flow and Heat Transfer of Ice Slurry in a Horizontal Tube[J]. Safety in Coal Mines, 2018, 49(12): 41-44,49.

Experimental Study on Flow and Heat Transfer of Ice Slurry in a Horizontal Tube

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  • Published Date: December 19, 2018
  • In order to understand the influence of the external parameters on the ice slurry and the refrigerating capacity of the ice slurry, this paper adopts the experimental method of the comparison and analysis of the melting process of the ice slurry under different heat addition and different flow velocities, and the inlet and outlet temperature and the ice content of the ice slurry in the inlet and outlet of the heat exchanger at different time, heat addition and different velocities are tested. The test results show that both the inlet and the outlet temperatures rise sharply after the exit temperature reaches to -3.95 ℃, and the duration of the internal ice slurry in the horizontal pipeline is inversely proportional to the mass velocity and the heating power based on the different mass flow velocities and heating power. It provides technical support for determining the design parameters of gas cooler.
  • [1]
    罗海珠.矿井通风降温理论与实践[M].沈阳:辽宁科学技术出版社,2013.
    [2]
    杨帆,张曼,吴双茂,等.动态冰浆流动特性分析[J].制冷技术,2009,35(5):435-436.
    [3]
    王继红.冰浆的管道输送热流动特性[D].大连:大连理工大学,2013.
    [4]
    李新,侯予,张兴群.冰浆流动及传热特性研究进展[J].制冷与空调,2007,7(4): 15-18.
    [5]
    Grumman DJ, Butkus AS. The ice storage option[J]. ASHRAE J, 1998, 1: 29-33.
    [6]
    Horibe A, Inaba H, Haruki N. 2001, Melting heat transfer of flowing ice slurry in a pipe[C]//Proceedings of the 4th IIR Workshop on Ice Slurries, Osaka, 2001: 145-152.
    [7]
    Roy S K, Avanic B L.Turbulent heat transfer with phase change suspensions[J]. International Journal of Heat and Mass Transfer, 2001, 44(12): 2277-2285.
    [8]
    Ben Lakhdar M A, Guilpart J, Lallemand A.Experimental study and calculation method of heat transfer coefficient when using ice slurries as secondary refrigerant[J]. Heat and Technology, 1999, 17(2): 49-55.
    [9]
    Stamatiou E, Kawaji M, Goldstein V. Ice fraction measurements in ice slurry flow through a vertical rectangular channel heated from one side[C]//Proceedings of the Fifth IIR Workshop on Ice Slurries, Stockholm, 2002.
    [10]
    Kawaji M, StamatiouE, Hong R, et al. Ice slurry flow and heat transfer characteristics in vertical rectangular channels and simulation of mixing in a storage tank[C]//Proceedings of the 4th IIR Workshop on Ice Slurries, Osaka, 2001.
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