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Effect of Flow Directions on Multiphase Flow Boiling Heat Transfer Enhanced by Suspending Particles in a Circulating Evaporation System

机译:流动方向对循环蒸发系统中悬浮颗粒增强多相流沸腾传热的影响

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摘要

A circulating fluidized bed evaporator (including down-flow, horizontal, and up-flow beds) was constructed to study the effect of flow directions on multiphase flow boiling heat transfer. A range of experimental investigations were carried out by varying amount of added particles (0–2%), circulation flow rate (2.15–5.16 m3/h) and heat flux (8–16 kW/m2). The com-parison of heat transfer performance in different vertical heights of the horizontal bed was also discussed. Results reveal that the glass bead particle can enhance heat transfer compared with vapor–liquid two-phase flow for all beds. At a low heat flux (q=8 kW/m2), the heat-transfer-enhancing factor of the horizontal bed is obviously greater than those of the up-flow and down-flow beds. With the increase in the amount of added particles, the heat-transfer-enhancing factors of the up-flow and down-flow beds increase, whereas that of the horizontal bed initially increases and then decreases. However, at a high heat flux (q=16 kW/m2), the heat-transfer-enhancing factors of the three beds show an increasing tendency with the increase in the amount of added particles and become closer than those at a low heat flux. For all beds, the heat-transfer-enhancing factor generally increases with the circulation flow rate but decreases with the increase in heat flux.
机译:构建了循环流化床蒸发器(包括下流床,水平床和上流床),以研究流向对多相流沸腾传热的影响。通过改变添加颗粒的量(0–2%),循环流量(2.15-5.16 m3 / h)和热通量(8-16 kW / m2)进行了一系列实验研究。还讨论了水平床不同垂直高度的传热性能比较。结果表明,与所有床的气液两相流相比,玻璃珠颗粒可增强传热。在低热通量(q = 8 kW / m2)下,水平床的传热增强因子明显大于上流床和下流床的传热因子。随着添加颗粒量的增加,上流床和下流床的传热增强因子增加,而水平床的传热增强因子先增大然后减小。但是,在高热通量(q = 16 kW / m2)下,三个床层的传热增强因子随着颗粒添加量的增加而呈现增加的趋势,并且比低热通量下的传热增强因子更接近。对于所有床,传热增强因子通常随着循环流量而增加,但随着热通量的增加而减小。

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  • 来源
    《天津大学学报(英文版)》 |2019年第3期|201-213|共13页
  • 作者单位

    School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China;

    School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China;

    School of Biological and Environmental Engineering, Tianjin Vocational Institute, Tianjin 300410, China;

    School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China;

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  • 入库时间 2022-08-19 04:25:02
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