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An advanced conduction based heat pipe model accounting for vapor pressure drop

机译:基于先进的传导热管模型算用于蒸气压降

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Heat pipes are passive heat transfer devices which play an increasingly important role in state-of-the-art cooling solutions for various technologies like consumer electronics or electric machines. During design phase, reliable simulation results are the key for optimal performance and efficiency. In system level simulations, heat conduction models, characterized by low computational effort, are widely used to predict heat pipe thermal resistance. In order to accurately calculate overall thermal characteristics, a precise prediction of the vapor core's temperature drop is crucial. In this study, a novel conduction-based method for calculating heat pipe performance is presented. Taking velocity components perpendicular to the main vapor flow into account, an analytic expression for calculating the axial pressure gradient is developed and validated through detailed CFD simulations. Assuming saturation conditions, results are used to determine the vapor core's local effective thermal conductivity. Parameters needed for calculation are provided for both circular and flat heat pipes under various operating conditions. The final model accounts for phase change thermal resistance and temperature dependent fluid properties. The presented method yields significantly different results compared to state-of-the-art approaches in which thermal vapor resistance is either assumed to be zero or calculated assuming (Hagen-)Poiseuille flow. Simulation results suggest a strong dependence of vapor thermal resistance on evaporation and condensation mass fluxes, thermophysical fluid properties and local vapor temperature.
机译:热管是无源传热装置,其在最先进的冷却解决方案中起着越来越重要的作用,用于消费电子或电机等各种技术。在设计阶段,可靠的仿真结果是最佳性能和效率的关键。在系统级模拟中,通过低计算工作的热传导模型,广泛用于预测热管热阻。为了精确地计算总热特性,精确预测蒸气芯的温度下降至关重要。在该研究中,提出了一种基于传导的用于计算热管性能的方法。考虑垂直于主要蒸汽流的速度分量,通过详细的CFD模拟开发并验证了用于计算轴向压梯度的分析表达。假设饱和条件,结果用于确定蒸汽芯的局部有效导热率。在各种操作条件下为圆形和扁平热管提供计算所需的参数。最终模型用于相变热阻和温度依赖性流体性能。与最先进的方法相比,呈现的方法产生显着不同的结果,其中热蒸汽阻力被假设为零或计算(Hagen-)Poiseuille流量。仿真结果表明蒸汽热阻对蒸发和缩合质量助熔剂,热神经性流体性能和局部蒸汽温度的强烈依赖性。

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