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Numerical investigation of flow instability and heat transfer characteristics inside pulsating heat pipes with different numbers of turns

机译:不同数量的脉动热管内流动不稳定性和传热特性的数值研究

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摘要

Pulsating heat pipes (PHPs) are multiphase devices with relatively well known properties. Like other heat pipes, PHPs provide high heat transfer rates over long distances due to the fluid phase changes that take place within them. Several studies focused on improving our understanding of the processes driving PHPs, but limited advances have been made to date. For instance, no comprehensive theory about the processes driving PHPs has been developed. This severely restricts PHP use because of uncertainties in predictions of the behaviors of new PHP designs, particularly for sub-optimal conditions such as non-vertical orientations. Computational fluid dynamics can be used to inspect PHPs non-intrusively, but have only been used for a few PHPs with simple geometries. Here, Volume Of Fluid and Lee phase-change models of PHPs with seven, 16, and 23 turns were compared with experimental data and a semi-empirical correlation and used to analyze flow instability and heat transfer. The flow structure, velocity, and temperature profiles at predefined locations and periods were assessed to describe the PHP operating ranges. Cross-correlations of the internal velocity and pressure signals helped explain the effects of the number of turns on PHP thermo-hydrodynamics. These techniques and additional experimental and numerical analyses can improve our understanding of PHPs.
机译:脉动热管(PHPS)是具有相对众所周知的特性的多相装置。与其他热管一样,由于在它们内部发生的流体相变,PHPS提供高远距离的高传热速率。几项研究致力于改善我们对驾驶PHP的流程的理解,但迄今为止已经有限的进展。例如,没有开发出驾驶PHP的过程的全面理论。这严重限制了PHP使用,因为在新PHP设计的行为预测中,特别是对于诸如非垂直方向的次优的条件,因此是不确定的。计算流体动力学可用于非侵入性检查PHP,但仅用于具有简单几何形状的几个PHP。这里,将具有7,16和23匝的PHP的流体和lee相变模型的体积与实验数据和半经验相关进行进行比较,并用于分析流量不稳定性和传热。评估预定位置和周期的流动结构,速度和温度分布,以描述PHP操作范围。内部速度和压力信号的互相关有助于解释匝数对PHP热流体动力学的影响。这些技术和其他实验和数值分析可以改善我们对PHP的理解。

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