Transient numerical investigation of a thermal-driving water pipe cooling system

Yun Luan, Junhang Luo, Beibei Wu, F. He, Jian-hua Wang
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Abstract

For a simple water cooling system, which consists of a U-shaped round pipe and a reservoir, how to discharge the vapor generated in the heated pipe during the cooling process is an interesting topic, especially when pumps or other driving units are hard to install and maintain in the device. In this paper, a thermal-driving method is proposed. By adding different heat fluxes on different parts of the U-shaped pipe, the fluid density difference between those parts can drive a natural circulation of fluid in the loop, and then the vapor bubbles can be discharged with the flow. Numerical simulations are carried out to study the transient performances of the thermal-driving water pipe cooling system under different heat flux distributions. The aim is to obtain the mechanism and evolution law of fluid movement, phase change and heat dissipation. The numerical results indicate that, when the heat flux is uniformly added on the whole pipe, slugs appear in the vertical pipe and where local heat transfer deterioration occurs. When the heat fluxes are different on the left and right vertical parts of the pipe, an overall circulating flow generates. In this process, small vapor bubbles can be discharged, which avoids the formation of the vapor slugs, and the system works stably at boiling point thereby. In addition, with an increase in the heat flux difference between the two vertical parts of the pipe, the initial time of the overall circulating flow shortens.
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热驱动水管冷却系统的瞬态数值研究
对于一个简单的水冷却系统,它由一个u型圆管和一个储水箱组成,如何排出在冷却过程中加热管中产生的蒸汽是一个有趣的话题,特别是当泵或其他驱动装置在设备中难以安装和维护时。本文提出了一种热驱动方法。通过在u型管的不同部位加入不同的热流密度,使各部位之间的流体密度差驱动回路中流体的自然循环,从而使汽泡随流排出。通过数值模拟研究了不同热流密度分布下热驱动水管冷却系统的瞬态性能。目的是获得流体运动、相变和散热的机理和演化规律。数值结果表明,当全管均匀加热流密度时,垂直管内出现弹塞,局部传热恶化。当管道左右垂直部位的热流密度不同时,产生整体循环流。在此过程中,可以排出小的蒸汽泡,避免了蒸汽塞状物的形成,从而使系统在沸点下稳定工作。此外,随着管道两垂直部分热流密度差的增大,整体循环流动的起始时间缩短。
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