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Numerical Simulations of Pulsating Heat Pipes, Part 1: Modeling

机译:脉动热管的数值模拟,第1部分:建模

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The pulsating nature of a closed loop pulsating heat pipe (CLPHP)makes the prediction of its thermal-hydraulic performance extremely challenging. Unfortunately, the design of CLPHPs is still quite an empirical process, requiring testing of many prototypes by cold plate fabricators and thus inhibiting their possibilities for application. This means that a reliable and robust CLPHP simulation code is needed to do the design and prediction of its thermal performance. In this study, an updated code based on a 1-D model that traces out the entire loop is presented, starting from its first version developed in 2015. The present code is based on the principles highlighted in the Three-Zone Model for flow boiling in a micro-channel (i.e. thin liquid film zone, liquid slug zone and dry-out zone), but applied to the oscillating flow of CLPHPs in both evaporating and condensing processes. The heat transfer processes between the wall and the fluid are modelled for both the liquid slugs (convective)and vapor plugs (film evaporation and condensation). The wall receives heat from the electronics to be cooled based on the boundary conditions applied locally and the wall conducts heat axially through a 1-D conduction scheme in addition to the two-phase pulsating mechanism. The present code can be classified as an engineering tool, being pragmatic and thus achieving accurate predictions with reasonably low computational times, as opposed to a research tool. More specifically, the kinetics of the flow are solved exclusively on the liquid slugs as the dynamics of the vapor and liquid film were assumed negligible, except for their changing lengths. The code also includes mechanisms related to bubble creation (new vapor plug formation by nucleation)and collapse (when two liquid slugs coalesce due to the vapor plug in between collapses).
机译:闭环脉动热管(CLPHP)的脉动特性使得对其热工液压性能的预测极具挑战性。不幸的是,CLPHP的设计仍然是一个经验过程,需要冷板制造商对许多原型进行测试,从而限制了它们的应用可能性。这意味着需要可靠且健壮的CLPHP仿真代码来进行其热性能的设计和预测。在本研究中,从2015年开发的第一版开始,提出了基于1-D模型的更新代码,该模型可追踪整个循环。当前代码基于三区模型中着重说明的原理进行沸腾在微通道中(即薄膜区,液团区和干燥区),但在蒸发和冷凝过程中都应用于CLPHP的振荡流。针对液体段塞(对流)和蒸气塞(薄膜蒸发和冷凝)对壁和流体之间的传热过程进行了建模。壁根据局部施加的边界条件从要冷却的电子设备接收热量,并且壁除了两相脉冲机制外还通过一维传导方案轴向传导热量。与研究工具相反,本代码可以归类为工程工具,是实用的,因此可以在相当短的计算时间内实现准确的预测。更具体地,流动的动力学仅在液体块上解决,因为假设蒸气和液体膜的动力学可以改变,除了其变化的长度之外,可以忽略不计。该规范还包括与气泡产生(通过成核形成新的蒸汽堵塞物)和坍塌(当两个液体团块由于坍塌之间的蒸汽堵塞而聚结)有关的机制。

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